Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences

Chine

Retour au propriétaire

1-100 de 134 pour Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences Trier par
Recheche Texte
Affiner par
Juridiction
        International 77
        États-Unis 57
Date
2025 juin 2
2025 avril 1
2025 (AACJ) 3
2024 11
2023 7
Voir plus
Classe IPC
G03F 7/20 - ExpositionAppareillages à cet effet 18
G01M 11/02 - Test des propriétés optiques 11
G01B 9/02 - Interféromètres 9
G02B 5/18 - Grilles de diffraction 8
G01J 9/02 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux par des méthodes interférométriques 7
Voir plus
Statut
En Instance 4
Enregistré / En vigueur 130
Résultats pour  brevets
  1     2        Prochaine page

1.

GADOLINIUM ALUMINUM BOROSILICATE OXYFLUORIDE SCINTILLATION GLASS AND PREPARATION METHOD THEREFOR

      
Numéro d'application CN2024140052
Numéro de publication 2025/130887
Statut Délivré - en vigueur
Date de dépôt 2024-12-17
Date de publication 2025-06-26
Propriétaire
  • INSTITUTE OF HIGH ENERGY PHYSICS, CHINESE ACADEMY OF SCIENCES (Chine)
  • JINGGANGSHAN UNIVERSITY (Chine)
  • HARBIN ENGINEERING UNIVERSITY (Chine)
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Qian, Sen
  • Sun, Xinyuan
  • Ren, Jing
  • He, Dongbing
  • Wang, Yifang
  • Wen, Yufeng
  • Li, Weichang
  • Hua, Zhehao

Abrégé

233232322, and 0.075-6.0 mol% of a luminescent center compound. By partially replacing gadolinium oxide with gadolinium fluoride, the melting temperature of the glass can be reduced, and the degree of erosion of molten glass to a crucible is reduced, thereby increasing the density of the glass to 6.0 g/cm3 or more. Furthermore, by changing the activation concentration of the luminescent center compound, the scintillation and time performance of the glass are improved. While maintaining high density, the scintillation glass can achieve a light yield exceeding 1000 ph/MeV, with a fast decay component of less than 100 ns.

Classes IPC  ?

  • C03C 4/12 - Compositions pour verres ayant des propriétés particulières pour verre luminescentCompositions pour verres ayant des propriétés particulières pour verre fluorescent
  • C03C 3/068 - Compositions pour la fabrication du verre contenant de la silice avec moins de 40% en poids de silice contenant du bore contenant des terres rares

2.

OPTICAL STORAGE MEDIUM, SUPER-RESOLUTION INFORMATION READING METHOD AND DEVICE BASED ON MEDIUM, AND SUPER-RESOLUTION INFORMATION WRITING METHOD AND DEVICE BASED ON MEDIUM

      
Numéro d'application CN2024085711
Numéro de publication 2025/118450
Statut Délivré - en vigueur
Date de dépôt 2024-04-03
Date de publication 2025-06-12
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINEMECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Zhao, Miao
  • Ruan, Hao
  • Wen, Jing
  • Hu, Qiao

Abrégé

122 to irradiate a surrounding area around the irradiated area of the solid light beam, so as to quench the fluorescence intensity of the surrounding area; and using fluorescence contrast record information of the irradiated area and the surrounding area to form an information record point the size of which is smaller than a diffraction limit. The super-resolution writing and the stimulated emission depletion microscopy technology-based super-resolution reading solve the problems that conventional reading and writing methods cannot break through a diffraction limit, the material transmittance is low, the number of three-dimensional record layers is limited, etc., and the optical storage density and capacity are greatly improved.

Classes IPC  ?

  • G11C 11/42 - Mémoires numériques caractérisées par l'utilisation d'éléments d'emmagasinage électriques ou magnétiques particuliersÉléments d'emmagasinage correspondants utilisant des éléments électriques utilisant des dispositifs opto-électroniques, c.-à-d. des dispositifs émetteurs de lumière et des dispositifs photo-électriques couplés électriquement ou optiquement

3.

HIGH-STRENGTH STEEL LASER WELDING FILLER, JOINT AND METHOD

      
Numéro d'application 18730963
Statut En instance
Date de dépôt 2023-10-13
Date de la première publication 2025-04-10
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Tao, Wu
  • Xu, Wei
  • Zhang, Jiazhi

Abrégé

A high-strength steel laser welding filler, comprising the following components in percentages by weight: 0.05-0.5% of C, 0.1-2% of Cu, 0.2-2.5% of Cr, 0.5-3.5% of Mo, and 2-10% of Ni, with the balance being Fe and inevitable impurities. The filler is used for laser filler welding of hot-formed steel which has an aluminum-containing coating on the surface thereof, can effectively reduce the adverse effect of the aluminum-containing coating on the surface on the strength of a joint, and enables the strength and plasticity of the welded joint, after hot stamping, to reach 90% or more of those of a base material.

Classes IPC  ?

  • B23K 26/322 - Assemblage tenant compte des propriétés du matériau concerné faisant intervenir des parties métalliques
  • B23K 35/30 - Emploi de matériaux spécifiés pour le soudage ou le brasage dont le principal constituant fond à moins de 1550 C
  • B23K 103/04 - Alliages d'acier
  • B23K 103/10 - Aluminium ou ses alliages
  • B23K 103/16 - Matériaux composites

4.

CURVED FORK-LIKE GRATING STRUCTURE, CURVED FORK-LIKE GRATING, AND PREPARATION METHOD THEREFOR

      
Numéro d'application 18789667
Statut En instance
Date de dépôt 2024-07-30
Date de la première publication 2024-11-28
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Jin, Yunxia
  • Wu, Yubo
  • Han, Yuxing
  • Kong, Fanyu
  • Cao, Hongchao
  • Zhang, Yibin

Abrégé

The curved fork-like grating is provided where curves formed by all points in the same relative positions in respective periods are distributed to be curved and fork-like, so that incident light irradiated on the curved fork-like grating is converted into Bessel-Gaussian light. Such a curved fork-like structure can be achieved by various gratings, such as a metal grating, a dielectric grating, or a metal and dielectric hybrid grating, without affecting their intrinsic characteristics, such as a diffraction efficiency, a use band, a diffraction angle, and a polarization characteristic except that a diffraction light field carries a high-order Bessel phase. Compared with a method for obtaining Bessel-Gaussian light in the prior art, the curved fork-like grating provided by the present invention is simpler in light path and appropriate for a wide band.

Classes IPC  ?

  • G02B 27/09 - Mise en forme du faisceau, p. ex. changement de la section transversale, non prévue ailleurs
  • G02B 5/18 - Grilles de diffraction
  • G02B 27/44 - Systèmes à réseauxRéseaux zonés
  • H01S 3/00 - Lasers, c.-à-d. dispositifs utilisant l'émission stimulée de rayonnement électromagnétique dans la gamme de l’infrarouge, du visible ou de l’ultraviolet

5.

APPARATUS AND METHOD FOR IMPLEMENTING PROBING OF NANOSECOND LASER-INDUCED DAMAGE PROCESS ON BASIS OF PUMP-PROBE TECHNIQUE

      
Numéro d'application CN2024075688
Numéro de publication 2024/174849
Statut Délivré - en vigueur
Date de dépôt 2024-02-04
Date de publication 2024-08-29
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINEMECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Liu, Xiaofeng
  • Xiang, Chengjiang
  • Li, Dawei
  • Zhao, Yuanan
  • Gong, He
  • Shuai, Kun
  • Xu, Ziyuan
  • Lian, Yafei
  • Shao, Yuchuan
  • Shao, Jianda

Abrégé

An apparatus and method for implementing probing of a nanosecond laser-induced damage process on the basis of a pump-probe technique. The apparatus comprises: a first digital delay signal generator, a second digital delay signal generator, a third digital delay signal generator, a probe laser that generates femtosecond or picosecond pulses, a pump laser that generates nanosecond high-energy pulses, a first shutter, a second shutter, a focusing lens, a high-reflectivity mirror, a probe signal receiving apparatus, and a computer. In the method, a pulse signal, which is output by a first digital delay signal generator, is used as a reference to trigger subsequent digital delay signal generators to respectively output frequency conversion signals, so as to implement output pulse delay of a probe laser and a pump laser, and a pump pulse and a probe pulse which are accurately delayed are extracted by means of shutter control. The method reduces hardware requirements, and can avoid requirements for sites, elements, etc., caused by optical path delay while implementing a longer delay, thereby reducing apparatus complexity and application operation difficulty.

Classes IPC  ?

  • G01N 21/39 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes en recherchant l'effet relatif du matériau pour les longueurs d'ondes caractéristiques d'éléments ou de molécules spécifiques, p. ex. spectrométrie d'absorption atomique en utilisant des lasers à longueur d'onde réglable

6.

DISSIMILAR METAL JOINT AND ELECTRIC RESISTANCE WELDING METHOD FOR PREPARING THE SAME

      
Numéro d'application 18641316
Statut En instance
Date de dépôt 2024-04-19
Date de la première publication 2024-08-08
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Li, Mingfeng
  • Yang, Shanglu
  • Tao, Wu
  • Wang, Yanjun

Abrégé

An electric resistance welding method for a dissimilar metal joint used for welding a laminated structure, with an outer layer being composed of iron or iron-based alloy, and an inner layer being composed of a metal with a density of less than 5 g/cm3 or a melting point of lower than 800° C. The electric resistance welding method comprises an expulsion stage in which a light metal or low-melting-point metal in the middle of the laminated structure is separated in a splashing mode, so that a connecting structure is directly formed between iron or iron-based alloy layers in a welding interface to complete welding. According to the invention, the formation of brittle intermetallic compounds on the welding interface of the dissimilar joint can be avoided, thereby improving the mechanical properties of the joint and achieving reliable connection between dissimilar metals. The invention further provides a dissimilar metal joint.

Classes IPC  ?

  • B23K 11/11 - Soudage par points
  • F16B 5/08 - Jonction de feuilles ou de plaques soit entre elles soit à des bandes ou barres parallèles à elles par soudage ou procédés similaires

7.

HIGH-STRENGTH STEEL LASER WELDING FILLER, JOINT AND METHOD

      
Numéro d'application CN2023124537
Numéro de publication 2024/078622
Statut Délivré - en vigueur
Date de dépôt 2023-10-13
Date de publication 2024-04-18
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Tao, Wu
  • Xu, Wei
  • Zhang, Jiazhi

Abrégé

A high-strength steel laser welding filler, comprising the following components in percentages by weight: 0.05-0.5% of C, 0.1-2% of Cu, 0.2-2.5% of Cr, 0.5-3.5% of Mo, and 2-10% of Ni, with the balance being Fe and inevitable impurities. The filler is used for laser filler welding of hot-formed steel which has an aluminum-containing coating on the surface thereof, can effectively reduce the adverse effect of the aluminum-containing coating on the surface on the strength of a joint, and enables the strength and plasticity of the welded joint, after hot stamping, to reach 90% or more of those of a base material.

Classes IPC  ?

8.

PULSE COMPRESSION ELECTRUM OPTICAL GRATING AND MANUFACTURING METHOD THEREFOR

      
Numéro d'application CN2022125609
Numéro de publication 2024/065893
Statut Délivré - en vigueur
Date de dépôt 2022-10-17
Date de publication 2024-04-04
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Jin, Yun Xia
  • Han, Yu Xing
  • Kong, Fan Yu
  • Cao, Hong Chao
  • Zhang, Yi Bin
  • Shao, Jianda

Abrégé

A pulse compression electrum optical grating and a manufacturing method therefor, a gold-based binary or multi-component mixture containing silver and/or platinum group elements, or a gold-top silver-bottom thin film which have proper proportions being selected as an electrum optical grating metal layer. The manufacturing method comprises: electrum optical grating feature contour parameter optimizing and electrum film material proportion optimizing. While not degrading optical properties of traditional gold optical gratings, the electrum optical grating broadens the high-diffraction-efficiency wave band of optical gratings, solves or ameliorates the problem of proneness to oxidation of pure-silver optical gratings, and further increases the anti-laser damage threshold value of gold optical gratings; and process parameters thereof can support the manufacturing of optical gratings having meter-scale calibers. The provided optical grating and the related process parameters can support construction of spectrometers, commercial ultrafast lasers and large-scale high-peak-power lasers, thus having great significance for the development of pulse compression optical gratings.

Classes IPC  ?

9.

CURVED FORK-SHAPED GRATING STRUCTURE, AND CURVED FORK-SHAPED GRATING AND PREPARATION METHOD THEREFOR

      
Numéro d'application CN2023117636
Numéro de publication 2024/051801
Statut Délivré - en vigueur
Date de dépôt 2023-09-08
Date de publication 2024-03-14
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINEMECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Jin, Yunxia
  • Wu, Yubo
  • Han, Yuxing
  • Kong, Fanyu
  • Cao, Hongchao
  • Zhang, Yibin

Abrégé

A curved fork-shaped grating structure, and a curved fork-shaped grating and preparation method therefor. In the curved fork-shaped grating, a curve formed by all points at a same relative position in respective periods thereof is in a curved fork shape distribution, such that an incident beam irradiated on the curved fork-shaped grating is converted into a Bessel Gaussian beam. The curved fork can be implemented by means of various types of grating, such as a metal grating, a dielectric grating or a hybrid metal-dielectric grating; meanwhile, the intrinsic characteristics of the gratings, such as diffraction efficiency, wavebands used, diffraction angle, polarization characteristic etc., are not influenced, only that the diffraction light field carries the high-order Bessel phase. Compared with the method for obtaining the Bessel-Gaussian beam in the prior art, the curved fork-shaped grating provided by the present invention has a simpler light path and is suitable for wide wavebands.

Classes IPC  ?

10.

DEVICE AND METHOD FOR PREPARING REFLECTIVE CURVED FORK-SHAPED GRATING

      
Numéro d'application CN2022133141
Numéro de publication 2024/050973
Statut Délivré - en vigueur
Date de dépôt 2022-11-21
Date de publication 2024-03-14
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Jin, Yunxia
  • Wu, Yubo
  • Kong, Fanyu
  • Zhao, Jingyin
  • Zhang, Yibin

Abrégé

A method for preparing a reflective curved fork-shaped grating. The grating prepared by the method is a pure-phase grating and can be used for generating perfect optical vortex beams (POV). A high-order Bessel-Gaussian beam is subjected to interference exposure with Gaussian light, wherein the high-order Bessel-Gaussian beam is generated by a reflective pure-phase liquid crystal spatial light modulator (SLM) (5); interference fringes are recorded in a photosensitive material on a substrate, and after development and metal film plating, a reflective curved fork-shaped grating can be prepared. By irradiation using fundamental mode Gaussian light, POV can be obtained in a far field in a first-order diffraction direction or on a focal plane of a lens. Compared with a conventional method using a SLM, the method of obtaining POV by using the reflective curved fork-shaped grating has the following advantages: having a higher damage threshold, a wider working wavelength range, and higher conversion efficiency, having a simple structure, involving low cost, facilitating mass production, having important prospects in generating high-power POV, and being applicable in the fields of optical manipulation, optical processing and the like.

Classes IPC  ?

11.

SPOT-WELDED JOINT AND MANUFACTURING METHOD THEREFOR

      
Numéro d'application CN2023113830
Numéro de publication 2024/041463
Statut Délivré - en vigueur
Date de dépôt 2023-08-18
Date de publication 2024-02-29
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Wang, Yanjun

Abrégé

A spot-welded joint and a manufacturing method therefor. The spot-welded joint comprises a first workpiece (1), a second workpiece (2), and a weld nugget used for fixedly connecting the first workpiece (1) and the second workpiece (2). At least one of the outer surface of the first workpiece (1) and the outer surface of the second workpiece (2) comprises a basic surface and an indentation, wherein the indentation comprises a first surface (111) which is located in the center and protrudes outwards and a second surface (112) which is located on the periphery of the first surface (111) and recessed inwardly, and the maximum distance h1 between the first surface (111) and the basic surface is smaller than the maximum distance h2 between the second surface (112) and the basic surface. The edge welding of the spot-welded joint is firmer, and the center is thinner, so that the generation of surface cracks and the formation of internal defects are reduced, thereby improving the welding spot strength.

Classes IPC  ?

  • B23K 11/11 - Soudage par points
  • B23K 11/10 - Soudage par pointsSoudage en ligne continue par points
  • B23K 11/30 - Caractéristiques relatives aux électrodes
  • B23K 11/00 - Soudage par résistanceSectionnement par chauffage par résistance
  • B23K 35/00 - Baguettes, électrodes, matériaux ou environnements utilisés pour le brasage, le soudage ou le découpage

12.

LASER COOLING HEAT SINK HAVING MICRO-CHANNEL STRUCTURE

      
Numéro d'application CN2023090023
Numéro de publication 2024/032028
Statut Délivré - en vigueur
Date de dépôt 2023-04-23
Date de publication 2024-02-15
Propriétaire
  • NANJING INSTITUTE OF ADVANCED LASER TECHNOLOGY (Chine)
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wang, Jianlei
  • Zhou, Jun
  • Chen, Weibiao

Abrégé

A laser cooling heat sink having a micro-channel structure, comprising a micro-channel heat sink working end (1), a heat-conducting metal filling layer (4), a micro-channel heat dissipation reinforcing end (2), and a heat sink base (3). The micro-channel heat sink working end (1) and the micro-channel heat dissipation reinforcing end (2) are sequentially arranged in the heat sink base (3). The working surface of the micro-channel heat sink working end (1) is attached to the cooling surface of a laser crystal. The heat dissipation surface of the micro-channel heat sink working end (1) is provided with a micro-channel structure, and is connected, by means of the heat-conducting metal filling layer (4), to the micro-channel heat dissipation reinforcing end (2) also provided with a micro-channel structure. The micro-channel structure is formed by pressing staggered heat dissipation ribs (5, 6). The heat sink base (3) is provided with a liquid inlet hole and a liquid outlet hole which are communicated with the micro-channel structure. The heat dissipation ribs (5, 6) arranged in a staggered manner are mutually pressed to form a micro-channel structure, so that the processing controllability is higher, and the processing difficulty is greatly reduced, thereby greatly reducing the precision requirements on processing equipment and reducing the production cost.

Classes IPC  ?

  • H01S 3/04 - Dispositions pour la gestion thermique
  • H01S 3/042 - Dispositions pour la gestion thermique pour des lasers à l'état solide
  • F28D 9/00 - Appareils échangeurs de chaleur comportant des ensembles de canalisations fixes en forme de plaques ou de laminés pour les deux sources de potentiel calorifique, ces sources étant en contact chacune avec un côté de la paroi d'une canalisation

13.

YTTRIUM ALUMINOSILICATE GLASS, PREPARATION METHOD THEREFOR, AND ELECTRONIC DEVICE

      
Numéro d'application CN2023092002
Numéro de publication 2024/016788
Statut Délivré - en vigueur
Date de dépôt 2023-05-04
Date de publication 2024-01-25
Propriétaire
  • HONOR DEVICE CO., LTD. (Chine)
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Jiang, Xiaoqi
  • Wang, Xin
  • Shi, Zhenguo
  • Xu, Wenbin
  • Han, Shuai

Abrégé

22323222222323233. The yttrium aluminosilicate glass provided in the present application has relatively high glass forming capability, good anti-falling performance and good mechanical properties such as Vickers hardness, Mohs hardness and Young modulus.

Classes IPC  ?

  • C03C 3/095 - Compositions pour la fabrication du verre contenant de la silice avec 40 à 90% en poids de silice contenant des terres rares
  • C03C 3/062 - Compositions pour la fabrication du verre contenant de la silice avec moins de 40% en poids de silice

14.

MICROCRYSTALLINE GLASS, PREPARATION METHOD, MICROCRYSTALLINE GLASS PRODUCT, AND ELECTRONIC DEVICE

      
Numéro d'application CN2023089841
Numéro de publication 2024/011993
Statut Délivré - en vigueur
Date de dépôt 2023-04-21
Date de publication 2024-01-18
Propriétaire
  • HONOR DEVICE CO., LTD. (Chine)
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wang, Xin
  • Zhang, Xufeng
  • Han, Shuai
  • Shi, Zhenguo
  • Xu, Wenbin

Abrégé

2323233: 0%-1%. By introducing alkaline earth metal ions and alkali metal ions in a glass system composed of calcium and aluminum, the glass-forming performance of the microcrystalline glass can be effectively improved while high mechanical strength of the microcrystalline glass is maintained, and the glass melting temperature and energy consumption can be reduced.

Classes IPC  ?

  • C03C 3/253 - Compositions pour la fabrication du verre contenant un oxyde mais pas de silice contenant du germanium
  • C03C 10/16 - Phase cristalline contenant un halogène

15.

POLISHING METHOD FOR REMOVING SPHERICAL CROWN-SHAPED BUMP ON SURFACE OF NODULAR DEFECT OF OPTICAL THIN FILM

      
Numéro d'application CN2022089449
Numéro de publication 2023/184634
Statut Délivré - en vigueur
Date de dépôt 2022-04-27
Date de publication 2023-10-05
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Zhu, Mei Ping
  • Liu, Tian Bao
  • Du, Wen Yun
  • Li, Jing Ping
  • Shao, Jianda

Abrégé

The present invention relates to the field of optical thin films, mainly aims at a nodular defect for reducing an optical thin film damage threshold, and particularly relates to a method for improving a thin film laser damage threshold by removing a spherical crown-shaped bump on the surface of a nodular defect. The method provided by the present invention comprises: using a smooth surface having roughness less than that of a thin film element as a polishing surface; by using a liquid having good wettability, forming a liquid film between the polishing surface and the surface of the thin film, a capillary force generated by the liquid film being the positive pressure acting on the surface of the thin film; and removing the nodular bump on the film surface by means of a friction force during a relative sliding process of the polishing surface and the film surface. The present invention uses a smooth surface and a liquid having good wettability for removing nodular bumps on the surface of a thin film, so that electric field enhancement caused by the nodular defect is reduced, and the laser damage threshold of the thin film element is improved without affecting the spectral performance of the thin film. Compared with an existing method for improving the laser damage threshold of an optical thin film, the present invention has characteristics such as simple operation, low cost, and broad application range.

Classes IPC  ?

  • C23C 14/58 - Post-traitement
  • B24B 1/00 - Procédés de meulage ou de polissageUtilisation d'équipements auxiliaires en relation avec ces procédés

16.

METHOD FOR GROWING LONG-SEED DKDP CRYSTAL BY TWO-DIMENSIONAL MOTION

      
Numéro d'application 18189054
Statut En instance
Date de dépôt 2023-03-23
Date de la première publication 2023-07-20
Propriétaire
  • Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
  • Chongqing University (Chine)
Inventeur(s)
  • Chen, Duanyang
  • Li, Mingwel
  • Qi, Hongji
  • Shao, Jianda
  • Wang, Bin
  • Liu, Hang
  • Yin, Huawei
  • Zhou, Chuan

Abrégé

A method for growing long-seed DKDP crystal by two-dimensional motion grows the crystal along the cylindrical surface, and there is no cylinder-cone interface with low optical quality, while avoiding three flow regions which are inevitable in the crystal growth process by rotating crystal method, including incident flow, side flow and wake flow, and easily cause inclusion formation. The long seed crystal moves periodically in the fresh solution, four cylindrical surfaces can achieve reversible shear flow in one cycle, and any point on the cylindrical surface experiences the same hydrodynamic conditions in one movement cycle, so that the solute supply is sufficient and uniform, the growth velocity is improved, and the stability of morphology is ensured. The method facilitates rapid growth of high quality DKDP crystals and provides a better solution for the large-size, high-quality DKDP crystal growth required by the ICF laser device.

Classes IPC  ?

  • C30B 7/00 - Croissance des monocristaux à partir de solutions en utilisant des solvants liquides à la température ordinaire, p. ex. à partir de solutions aqueuses
  • C30B 29/16 - Oxydes

17.

WELDING MATERIAL PIECE, CONVEYING SYSTEM, AND WELDING DEVICE AND METHOD

      
Numéro d'application CN2022112983
Numéro de publication 2023/130732
Statut Délivré - en vigueur
Date de dépôt 2022-08-17
Date de publication 2023-07-13
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Li, Mingfeng
  • Yang, Shanglu
  • Tao, Wu
  • Wang, Yanjun

Abrégé

A welding material piece (100), used for dissimilar metal welding of a first metal plate (200) having a melting point not exceeding 800°C and a second metal plate (300) having a melting point higher than 800°C. A prismatic structure (101) is arranged around the center of the surface of the welding material piece making contact with the first metal plate, such that the prismatic structure can be embedded into the surface of the first metal plate in a welding process. The welding material piece can effectively achieve electric resistance welding connection between dissimilar metal, and improves the joint strength and the welding quality, and is simple in manufacturing and low in cost. The present invention further relates to a material piece conveying system, a welding device, and a welding method.

Classes IPC  ?

18.

Simultaneous phase-shift point diffraction interferometer and method for detecting wave aberration

      
Numéro d'application 17728674
Numéro de brevet 11788829
Statut Délivré - en vigueur
Date de dépôt 2022-04-25
Date de la première publication 2023-05-25
Date d'octroi 2023-10-17
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Feng, Peng
  • Li, Zhongliang
  • Wang, Xiangzhao
  • Bu, Yang

Abrégé

A simultaneous phase-shift point diffraction interferometer and method for detecting wave aberration. The interferometer comprises an ideal spherical wave generation module, an optical system to be measured, an image plane mask, a polarization phase shift module, a two-dimensional polarization imaging photodetector and a data processing unit. Single photodetector is adopted to realize simultaneous detection of more than three phase shift interference patterns, and has the advantages that environmental interference suppression, a flexible optical path, high measurement accuracy, and calibration of system errors of the interferometer may be realized.

Classes IPC  ?

19.

THREE-AXIS HIGH-OPTICAL SUBDIVISION GRATING RULER

      
Numéro d'application CN2021130686
Numéro de publication 2023/070757
Statut Délivré - en vigueur
Date de dépôt 2021-11-15
Date de publication 2023-05-04
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wei, Chunlong
  • Zhou, Changhe

Abrégé

A three-axis high-optical subdivision grating ruler, which comprises: a dual-frequency polarized parallel light and reference light generation module, non-polarizing beam splitter prisms (2, 5), a combined grating (6), a two-dimensional subdivision prism assembly (10), a two-dimensional grating (11), a heterodyne photoelectric conversion unit module (2000), and a light source driving and signal detection and processing device (30). The dual-frequency polarized parallel light and reference light generation module generates three beams of dual-frequency polarized parallel light. After passing through the non-polarizing beam splitter prism (2) and the combined grating (6), the three beams of dual-frequency polarized parallel light are incident to the two-dimensional subdivision prism assembly (10), are diffracted and reflected back and forth approximately at a Littrow angle between the two-dimensional grating (11) and the two-dimensional subdivision prism assembly (10), are finally subjected to auto-collimation and reflected back, are respectively subjected to beam combination by the combined grating (6), coincide with respective incident light beams, are then reflected by the non-polarizing beam splitter prism (5), are received by the heterodyne photoelectric conversion unit module (2000), and are further detected and processed by the light source driving and signal detection and processing device (30), so as to obtain eight-or-more-times optically subdivided displacement and angle measurements of three axes X/Y/θz of relative motion of the two-dimensional grating (11).

Classes IPC  ?

  • G01B 11/02 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la longueur, la largeur ou l'épaisseur
  • G01B 11/26 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer des angles ou des cônesDispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour tester l'alignement des axes

20.

DISSIMILAR METAL JOINT AND RESISTANCE WELDING METHOD THEREFOR

      
Numéro d'application CN2022113073
Numéro de publication 2023/065797
Statut Délivré - en vigueur
Date de dépôt 2022-08-17
Date de publication 2023-04-27
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Li, Mingfeng
  • Yang, Shanglu
  • Tao, Wu
  • Wang, Yanjun

Abrégé

Provided are a resistance welding method for a dissimilar metal joint, and a dissimilar metal joint, welding a laminated structure having an outer layer composed of iron or an iron-based alloy, and an inner layer composed of metal having a density less than 5 g/cm3 or a melting point lower than 800°C. The resistance welding method comprises a spatter stage, the light metal or low-melting-point metal in the middle of the laminated structure being separated in spattering manner in the spatter stage, so that the iron or iron-based alloy layers in the welding interface directly form a connecting structure to complete welding. The present resistance welding method can prevent formation of brittle intermetallic compounds in a dissimilar joint welding interface, improving mechanical properties of the joint and achieving a reliable connection between dissimilar metals.

Classes IPC  ?

  • B23K 11/20 - Soudage par résistance tenant compte des propriétés du métal à souder de métaux différents
  • B23K 11/11 - Soudage par points

21.

Broadband super-Rayleigh speckle correlated imaging spectral camera based on dispersion compensation and imaging method thereof

      
Numéro d'application 18145847
Numéro de brevet 12339166
Statut Délivré - en vigueur
Date de dépôt 2022-12-22
Date de la première publication 2023-04-27
Date d'octroi 2025-06-24
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Han, Shensheng
  • Wang, Pengwei
  • Liu, Zhentao
  • Wu, Jianrong

Abrégé

A broadband super-Rayleigh speckle correlated imaging spectral camera based on dispersion compensation is provided. The imaging scheme comprises, but is not limited to, a pre-compensation scheme, a post-compensation scheme, or a pre-post joint compensation scheme. The device comprises components such as a pre-imaging module, a light filter, a phase modulation module, a relay imaging module, an area array detector, and a computer. According to the present invention, the super-Rayleigh speckle modulation in a broadband is realized by matchining the dispersion characteristic of the pre-imaging module or the relay imaging module with the phase modulation module, which is applied to the correlated imaging spectral camera, so that the imaging quality of the correlated imaging spectral camera at a low signal-to-noise ratio is improved.

Classes IPC  ?

  • G01J 3/28 - Étude du spectre
  • G01J 3/02 - SpectrométrieSpectrophotométrieMonochromateursMesure de la couleur Parties constitutives
  • G01J 3/433 - Spectrométrie par modulationSpectrométrie par dérivation

22.

Method for compensation during the process of wavefront reconstruction in grating-based lateral shearing interferometry

      
Numéro d'application 17525624
Numéro de brevet 11561082
Statut Délivré - en vigueur
Date de dépôt 2021-11-12
Date de la première publication 2022-12-29
Date d'octroi 2023-01-24
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Li, Peng
  • Tang, Feng
  • Wang, Xiangzhao
  • Lu, Yunjun
  • Liu, Yang

Abrégé

Method for simultaneously compensating pupil coordinate distortion and shear amount change in a process of wavefront reconstruction in grating transverse shear interference. Where a wavefront is diffracted by a grating, the shapes and light paths of the diffracted wavefronts of all the orders are different, so that on one hand, a coordinate system detected by a detector plane is distorted relative to a pupil coordinate system, and on the other hand, a shear amount changes along with a coordinate position.

Classes IPC  ?

23.

Device and method for phase imaging and element detection based on wavefront modulation

      
Numéro d'application 17875392
Numéro de brevet 12372414
Statut Délivré - en vigueur
Date de dépôt 2022-07-27
Date de la première publication 2022-12-01
Date d'octroi 2025-07-29
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Pan, Xingchen
  • Liu, Cheng
  • Zhu, Jianqiang

Abrégé

A device and method for phase imaging and element detection based on wavefront modulation are provided to overcome the disadvantages of an existing interferometry such as twin image elimination, limit resolution, under-sampling wavefront measurement, and multi-modal measurement. From the perspective of light field encoding, the accurate measurement to a complex amplitude of a light field to be measured is completely achieved by the iterative calculation, and at the same time, a twin image problem may be effectively eliminated, and it has the multi-modal (multi-wavelength) reconstruction ability. Theoretically, it is able to reach the diffraction limit resolution, may be widely used in phase imaging, optical element surface-type detection, polarization distribution measurement and the like, and it has a wide range of applications.

Classes IPC  ?

  • G01J 9/00 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux
  • G02B 6/28 - Moyens de couplage optique ayant des bus de données, c.-à-d. plusieurs guides d'ondes interconnectés et assurant un système bidirectionnel par nature en mélangeant et divisant les signaux
  • G02B 27/09 - Mise en forme du faisceau, p. ex. changement de la section transversale, non prévue ailleurs
  • G02B 27/12 - Systèmes divisant ou combinant des faisceaux fonctionnant uniquement par réfraction
  • G02B 27/14 - Systèmes divisant ou combinant des faisceaux fonctionnant uniquement par réflexion
  • G02B 27/28 - Systèmes ou appareils optiques non prévus dans aucun des groupes , pour polariser
  • H04N 23/56 - Caméras ou modules de caméras comprenant des capteurs d'images électroniquesLeur commande munis de moyens d'éclairage
  • H04N 23/71 - Circuits d'évaluation de la variation de luminosité
  • H04N 23/74 - Circuits de compensation de la variation de luminosité dans la scène en influençant la luminosité de la scène à l'aide de moyens d'éclairage

24.

BROADBAND SUPER-RAYLEIGH SPECKLE CORRELATED IMAGING SPECTRAL CAMERA BASED ON DISPERSION COMPENSATION AND IMAGING METHOD THEREFOR

      
Numéro d'application CN2021103979
Numéro de publication 2022/241915
Statut Délivré - en vigueur
Date de dépôt 2021-07-01
Date de publication 2022-11-24
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Han, Shensheng
  • Wang, Pengwei
  • Liu, Zhentao
  • Wu, Jianrong

Abrégé

A broadband super-Rayleigh speckle correlated imaging spectral camera based on dispersion compensation. Imaging solutions comprise but are not limited to the following several imaging solutions: a pre-compensation solution, a post-compensation solution or a combined pre- and post-compensation solution. The broadband super-Rayleigh speckle correlated imaging spectral camera based on dispersion compensation comprises elements such as a front-facing imaging module (1), a bandpass filter (2), a phase modulation module, a relay imaging module (4), an area array detector (5), and a computer (6).According to the broadband super-Rayleigh speckle correlated imaging spectral camera based on dispersion compensation, super-Rayleigh speckle modulation over a broadband is implemented by using the dispersion characteristics of the front-facing imaging module (1) or the relay imaging module (4) in conjunction with the phase modulation module, and this method is applied to a correlated imaging spectral camera, thereby improving the imaging quality of the correlated imaging spectral camera in a low signal-to-noise ratio.

Classes IPC  ?

  • G01J 3/28 - Étude du spectre
  • G01J 3/02 - SpectrométrieSpectrophotométrieMonochromateursMesure de la couleur Parties constitutives

25.

Multi-channel device and method for measuring distortion and magnification of objective lens

      
Numéro d'application 17547179
Numéro de brevet 11604418
Statut Délivré - en vigueur
Date de dépôt 2021-12-09
Date de la première publication 2022-11-17
Date d'octroi 2023-03-14
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Cao, Yisha
  • Tang, Feng
  • Wang, Xiangzhao
  • Liu, Yang
  • Lu, Yunjun

Abrégé

A multi-channel device and method for measuring the distortion and magnification of objective lens. The multi-channel device for measuring the distortion and magnification of objective lens comprises an illumination system, a reticle stage, a test reticle, a projection objective lens, a wafer stage and a multi-channel image plane sensor, wherein the multi-channel image plane sensor simultaneously measures the image placement shifts between actual image points and nominal image points after a plurality of object plane test marks are imaged by the projection objective lens, and calculates the distortion and magnification errors of the objective lens by fitting, which shortens the measurement time, eliminates the influence of wafer stage errors on the measurement accuracy and improves the measurement accuracy.

Classes IPC  ?

  • G03F 7/20 - ExpositionAppareillages à cet effet
  • G03F 1/44 - Aspects liés au test ou à la mesure, p. ex. motifs de grille, contrôleurs de focus, échelles en dents de scie ou échelles à encoches
  • G03F 1/42 - Aspects liés à l'alignement ou au cadrage, p. ex. marquages d'alignement sur le substrat du masque

26.

Radiation-resistant laser optical fiber preform core rod and preparation method therefor

      
Numéro d'application 17761075
Numéro de brevet 12001052
Statut Délivré - en vigueur
Date de dépôt 2020-07-01
Date de la première publication 2022-10-27
Date d'octroi 2024-06-04
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Shao, Chongyun
  • Hu, Lili
  • Yu, Chunlei
  • Wang, Meng
  • Jiao, Yan
  • Zhang, Lei
  • Wang, Shikai
  • Xu, Xiaoqing

Abrégé

−), and —OD group of 16-118 ppm. Irradiation resistance of core rod glass can be effectively improved by sequentially performing pre-treatments, i.e. deuterium loading, pre-irradiation and thermal annealing on a preform core rod. Electron paramagnetic resonance test shows that, under the same radiation condition, the radiation induced color center concentration in a preform core rod treated by the method above is lower than in an untreated core rod by one or more orders of magnitude. The obtained core rod can be used for preparing a radiation-resistant rare earth-doped silica fiber, and has the advantages of high laser slope efficiency, low background loss, being able to be used stably in a vacuum environment for a long time, for example.

Classes IPC  ?

  • G02B 6/02 - Fibres optiques avec revêtement
  • C03C 25/1065 - Revêtements multiples
  • G02B 6/036 - Fibres optiques avec revêtement le noyau ou le revêtement comprenant des couches multiples

27.

TWO-DIMENSIONAL MOTION-BASED GROWTH METHOD FOR LONG-SEED DKDP CRYSTAL

      
Numéro d'application CN2021111693
Numéro de publication 2022/205725
Statut Délivré - en vigueur
Date de dépôt 2021-08-10
Date de publication 2022-10-06
Propriétaire
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
  • CHONGQING UNIVERSITY (Chine)
Inventeur(s)
  • Chen, Duanyang
  • Li, Mingwei
  • Qi, Hongji
  • Shao, Jianda
  • Wang, Bin
  • Liu, Hang
  • Yin, Huawei
  • Zhou, Chuan

Abrégé

A two-dimensional motion-based growth method for a long-seed DKDP crystal, wherein a two-dimensional motion motor drives a crystal carrier to perform periodic translation on a horizontal plane in a growth solution in a growth tank according to a square motion trajectory. Reversible shear flow can be realized on four cylindrical surfaces after a motion cycle, and any point on the cylindrical surfaces undergoes exactly the same hydrodynamic conditions in one motion cycle, so that the solute supply is both sufficient and uniform, the growth velocity is increased, and the morphological stability is good.

Classes IPC  ?

  • C30B 7/00 - Croissance des monocristaux à partir de solutions en utilisant des solvants liquides à la température ordinaire, p. ex. à partir de solutions aqueuses
  • C30B 29/14 - Phosphates

28.

Ultrastable laser system based on polarization-maintaining optical fiber

      
Numéro d'application 17696847
Numéro de brevet 12224546
Statut Délivré - en vigueur
Date de dépôt 2022-03-16
Date de la première publication 2022-09-29
Date d'octroi 2025-02-11
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Li, Tang
  • Wang, Lingke

Abrégé

An ultrastable laser system is based on a polarization-maintaining optical fiber. The ultrastable laser system comprises a laser device; acousto-optic modulators, a first beam splitter, a polarizer, an optical fiber interferometer comprising a second beam splitter, an optical fiber delay line, a third acousto-optic modulator, and a beam combiner; a beam combiner, a polarization beam splitter, photoelectric detectors, a frequency synthesizer, frequency mixers, a servo feedback circuit and a piezoelectric ceramic. The temperature interference is eliminated based on the characteristic that refractive indexes of a fast axis and a slow axis of the polarization-maintaining optical fiber differently change with a temperature, a vacuum structure can be avoided, and the ultrastable laser system has low cost, small system, simple structure and high signal stability.

Classes IPC  ?

  • H01S 3/13 - Stabilisation de paramètres de sortie de laser, p. ex. fréquence ou amplitude
  • H01S 3/067 - Lasers à fibre optique
  • H01S 3/10 - Commande de l'intensité, de la fréquence, de la phase, de la polarisation ou de la direction du rayonnement, p. ex. commutation, ouverture de porte, modulation ou démodulation

29.

Apparatus and method for detecting wavefront aberration of objective lens

      
Numéro d'application 17472047
Numéro de brevet 11668625
Statut Délivré - en vigueur
Date de dépôt 2021-09-10
Date de la première publication 2022-09-22
Date d'octroi 2023-06-06
Propriétaire Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Li, Peng
  • Tang, Feng
  • Wang, Xiangzhao
  • Lu, Yunjun
  • Liu, Yang
  • Wei, Xiangyu
  • Cao, Yisha
  • Peng, Changzhe

Abrégé

Apparatus and method for detecting wavefront aberration of an objective lens, comprising a wavefront detection system, a planar mirror, and a planar mirror adjusting mechanism; the objective lens is placed between planar mirror and wavefront detection system; planar mirror is positioned at focal point of the objective lens. A test wavefront emitted by wavefront detection system passes through the objective lens, gets reflected by the planar mirror, and t passes through the objective lens again; the wavefront detection system receives and detects the test wavefront to derive a phase distribution thereof; an angle of the planar mirror tilts at is adjusted to obtain different return wavefronts; a polynomial for expressing wavefront aberration is selected, and expressions corresponding to all the return wavefronts are calculated; result of fitting the wavefront aberration of the objective lens when expressed by the selected polynomial is derived through fitting with the polynomial.

Classes IPC  ?

  • G01B 11/02 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la longueur, la largeur ou l'épaisseur
  • G01M 11/02 - Test des propriétés optiques
  • G01B 9/0209 - Interféromètres à faible cohérence
  • G02B 5/08 - Miroirs

30.

OCEAN OBSERVATION METHOD AND SYSTEM BASED ON ACCOMPANYING FLIGHT OF TWO SATELLITES RESPECTIVELY CARRYING INTERFERENCE IMAGING ALTIMETER AND LASER RADAR

      
Numéro d'application CN2022082975
Numéro de publication 2022/171202
Statut Délivré - en vigueur
Date de dépôt 2022-03-25
Date de publication 2022-08-18
Propriétaire
  • QINGDAO NATIONAL LABORATORY FOR MARINE SCIENCE AND TECHNOLOGY DEVELOPMENT CENTER (Chine)
  • OCEAN UNIVERSITY OF CHINA (Chine)
  • BEIJING INSTITUTE OF RADIO MEASUREMENT (Chine)
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCE (Chine)
  • CHINA ACADEMY OF SPACE TECHNOLOGY (Chine)
Inventeur(s)
  • Chen, Ge
  • Tang, Junwu
  • Zhao, Chaofang
  • Sun, Hanwei
  • Chen, Weibiao
  • Liu, Jie
  • Wu, Songhua
  • Ma, Chunyong
  • Yu, Fangjie
  • Wang, Yunhua
  • Liu, Bingyi
  • Tian, Fenglin
  • Chen, Shuguo
  • Yang, Jie
  • Zhang, Bentao

Abrégé

The present application relates to an ocean observation method and system based on accompanying flight of two satellites respectively carrying an interference imaging altimeter and a laser radar. The ocean observation method comprises: an observation step, which is configured to observe, in an operation orbit, an ocean phenomenon by means of a first satellite and a second satellite which perform accompanying flight in the same operation orbit, wherein the first satellite performs ocean surface height observation by means of carrying an interference imaging altimeter, and the second satellite performs atmosphere and ocean profile observation by means of carrying an ocean profile laser radar; and a data processing and transmission step, which is configured to receive, by means of the first satellite, atmosphere and ocean profile observation data sent by the second satellite, and send, to a ground station, the atmosphere and ocean profile observation data and ocean surface height observation data from the first satellite, and which is configured to process, by means of the ground station, the ocean surface height observation data and the atmosphere and ocean profile observation data, so as to obtain an observation result. By means of the present application, the problem of realizing, at a low cost and low risk, the wide-swath and sub-mesoscale observation of an ocean and the remote sensing detection of a near thermocline of the ocean is solved.

Classes IPC  ?

  • G01S 17/95 - Systèmes lidar, spécialement adaptés pour des applications spécifiques pour la météorologie
  • G01S 17/90 - Systèmes lidar, spécialement adaptés pour des applications spécifiques pour la cartographie ou l'imagerie utilisant des techniques d'ouverture synthétique
  • G01S 7/48 - Détails des systèmes correspondant aux groupes , , de systèmes selon le groupe

31.

METHOD FOR LASER POWDER-FILLING WELDING AND HEAT TREATMENT OF COATED STEEL

      
Numéro d'application CN2021088953
Numéro de publication 2022/165997
Statut Délivré - en vigueur
Date de dépôt 2021-04-22
Date de publication 2022-08-11
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Xu, Wei
  • Yang, Shanglu
  • Tao, Wu

Abrégé

A method for laser powder-filling welding and heat treatment of coated steel, comprising the following steps: selecting evenly mixed manganese-chromium-nickel alloy powder (3); mounting, clamping and fixing two coated steel sheets (4, 5) on a welding workbench; implementing laser powder-filling welding; and performing heat treatment after welding.

Classes IPC  ?

32.

Device and method for splicing array optical fiber with large-size quartz end cap

      
Numéro d'application 17340820
Numéro de brevet 12099238
Statut Délivré - en vigueur
Date de dépôt 2021-06-07
Date de la première publication 2022-07-07
Date d'octroi 2024-09-24
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Zhang, Haibo
  • Wu, Menghao
  • He, Bing
  • Lei, Yu
  • Zhou, Jun
  • Qi, Yunfeng
  • Yuan, Zhijun
  • Ye, Ren

Abrégé

A device for realizing the splicing of an array fiber and a large-size quartz end cap comprises a carbon dioxide laser, a light splitter, a light beam shaper, a high reflectivity mirror, an image detection module, an array fiber and a carrier thereof, a large-size quartz end cap and a carrier thereof, a stepping motor, a thermodetector, and a computer; a laser beam emitted by the carbon dioxide laser is divided into two light beams through a light splitter, after the two light beams respectively pass through the beam shaper and the high reflectivity mirror, two strip-shaped light spots with uniform power density are integrally formed to heat a splicing face of the large-size quartz end cap, a uniform temperature field of a target splicing area is achieved through indirect heating and heat conduction.

Classes IPC  ?

  • G02B 6/255 - Épissage des guides de lumière, p. ex. par fusion ou par liaison

33.

WAVEFRONT MODULATION-BASED DEVICE AND METHOD FOR PHASE IMAGING AND COMPONENT DETECTION

      
Numéro d'application CN2021070200
Numéro de publication 2022/121071
Statut Délivré - en vigueur
Date de dépôt 2021-01-05
Date de publication 2022-06-16
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Pan, Xingchen
  • Liu, Cheng
  • Zhu, Jianqiang

Abrégé

A wavefront modulation-based device and method for phase imaging and component detection. In view of the deficiencies of existing interferometry techniques with respect to twin image elimination, limit resolution, undersampling wavefront measurement, and multimodal measurement, a wavefront modulation-based device and method for phase imaging and component detection is provided; from the perspective of light field encoding, the accurate measurement of the complex amplitude of a light field to be measured is completed by means of iterative calculations, and the twin image problem may be effectively eliminated at the same time; and the device has multi-modality (multi-wavelength) reconstruction capabilities, may theoretically achieve diffraction limit resolution, may be widely used in phase imaging, optical component surface shape detection and polarization distribution measurement, and has a wide range of applications.

Classes IPC  ?

  • G01N 21/01 - Dispositions ou appareils pour faciliter la recherche optique
  • G01N 21/39 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes en recherchant l'effet relatif du matériau pour les longueurs d'ondes caractéristiques d'éléments ou de molécules spécifiques, p. ex. spectrométrie d'absorption atomique en utilisant des lasers à longueur d'onde réglable
  • G01J 9/00 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux

34.

LASER WELDING AND HEAT TREATMENT METHOD FOR HIGH-STRENGTH STEEL

      
Numéro d'application CN2021088912
Numéro de publication 2022/095341
Statut Délivré - en vigueur
Date de dépôt 2021-04-22
Date de publication 2022-05-12
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Xu, Wei
  • Yang, Shanglu
  • Tao, Wu

Abrégé

A laser welding and heat treatment method for high-strength steel. The method comprises the following steps: selecting a welding paste having an austenite stabilizing element as a filler material; clamping and fixing two high-strength steel plates on a welding workbench; performing laser welding on a region to be welded while conveying the filler material to a weld pool; and placing the welded steel plates in a heating furnace at 850-1100°C for 2-30 min, and then cooling same to room temperature by any cooling means. After heat treatment, a fusion zone of a welded joint has a martensitic microstructure.

Classes IPC  ?

  • B23K 26/21 - Assemblage par soudage
  • B23K 26/70 - Opérations ou équipement auxiliaires
  • C21D 1/18 - DurcissementTrempe avec ou sans revenu ultérieur
  • C21D 6/00 - Traitement thermique des alliages ferreux
  • C21D 9/50 - Traitement thermique, p. ex. recuit, durcissement, trempe ou revenu, adapté à des objets particuliersFours à cet effet pour joints de soudure

35.

SIX-DEGREE-OF-FREEDOM MEASURING GRATING SCALE

      
Numéro d'application CN2020129983
Numéro de publication 2022/095128
Statut Délivré - en vigueur
Date de dépôt 2020-11-19
Date de publication 2022-05-12
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wei, Chunlong
  • Zhou, Changhe

Abrégé

A six-degree-of-freedom measuring grating scale, comprising: a laser device (1), a beam splitting and collimation module (2, 3, 4), a polarizing light splitter (11), a reflective module (12, 13), an auto-collimation module (14, 15), a measuring grating (16), a linear polarizer (17), six detection units (18-23), and a signal acquisition and processing device (24). A single reading head of the grating scale can achieve six-degree-of-freedom high-precision measurement of a measured object. By means of an effective optical path design, a large-mounting-tolerance optical path structure in which Littrow auto-collimated incidence is performed on the measuring grating can be achieved. The overall structure of the grating scale system is simple and compact, and the grating scale can be manufactured easily, and has low costs.

Classes IPC  ?

  • G01B 11/26 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer des angles ou des cônesDispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour tester l'alignement des axes
  • G01B 11/02 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la longueur, la largeur ou l'épaisseur

36.

Mid-frequency error-free machining method under magneto-rheological polishing magic angle-step

      
Numéro d'application 17565397
Numéro de brevet 12162112
Statut Délivré - en vigueur
Date de dépôt 2021-12-29
Date de la première publication 2022-04-21
Date d'octroi 2024-12-10
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Wei, Chaoyang
  • Wan, Songlin
  • Shao, Jianda
  • Gu, Haojin

Abrégé

A mid-frequency error-free machining method under a magneto-rheological polishing magic angle-step includes the following steps: measuring a magneto-rheological removal function, and determining a control accuracy of a machine tool; performing two-dimensional Fourier transform on the removal function, performing compensating filtering on a frequency spectrum based on the control accuracy of the machine tool, and analyzing a corresponding step at the lowest point of an amplitude of the two-dimensional frequency spectrum that undergoes filtering in a direction of a magic angle; planning a grid path under the given step on the basis of adjusting a direction of a machining path or a posture of a magneto-rheological polishing wheel to allow an included angle between the polishing wheel and the path kept to be at the magic angle; and finally, controlling the machining of the machine tool.

Classes IPC  ?

  • B24B 1/00 - Procédés de meulage ou de polissageUtilisation d'équipements auxiliaires en relation avec ces procédés
  • B24B 51/00 - Systèmes pour la commande automatique d'une série d'opérations successives du meulage d'une pièce

37.

Single-beam photothermal measurement apparatus and measurement method for absorptive defects

      
Numéro d'application 17566675
Numéro de brevet 12099002
Statut Délivré - en vigueur
Date de dépôt 2021-12-30
Date de la première publication 2022-04-21
Date d'octroi 2024-09-24
Propriétaire
  • Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
  • Shanghai Hengyi Optics And Fine Mechanics Co., Ltd (Chine)
Inventeur(s)
  • Liu, Shijie
  • Ni, Kaizao
  • Shao, Jianda
  • Wang, Weiwei
  • Xu, Tianzhu
  • Li, Yingjia
  • Lu, Qi

Abrégé

A single-beam photothermal measurement apparatus and a measurement method for absorptive defects. The apparatus comprises a common-path-type structure and a non-common-path-type structure. The present invention is simple in optical structure and convenient to align and adjustment. The measurement result is stable, and measurement signal anomalies caused by environmental vibration and sample tilt are avoided. By detecting a power change on the edge of a beam spot, the measurement sensitivity of a system is remarkably improved.

Classes IPC  ?

  • G01N 21/31 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes en recherchant l'effet relatif du matériau pour les longueurs d'ondes caractéristiques d'éléments ou de molécules spécifiques, p. ex. spectrométrie d'absorption atomique
  • G01N 21/958 - Inspection de matériaux transparents
  • G02B 26/10 - Systèmes de balayage
  • G02B 27/14 - Systèmes divisant ou combinant des faisceaux fonctionnant uniquement par réflexion
  • G02B 27/28 - Systèmes ou appareils optiques non prévus dans aucun des groupes , pour polariser

38.

Multi-dimensional spatial positioning system and method for disturbance source

      
Numéro d'application 17420578
Numéro de brevet 12007259
Statut Délivré - en vigueur
Date de dépôt 2019-12-30
Date de la première publication 2022-04-07
Date d'octroi 2024-06-11
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wang, Zhaoyong
  • Liang, Jiajing
  • Chen, Boqi
  • Cai, Haiwen
  • Ye, Qing

Abrégé

A multi-dimensional spatial positioning system and method for disturbance source. The system includes a distributed-optical fiber sensor, a sensing optical fiber, a coordinate system, a disturbance source to be monitored, a first signal group, and a second signal group. The disturbance source is positioned by combining an array signal processing method with the distributed optical fiber sensor, using different laying manners for the sensing optical fiber and a certain number of flexibly selected sensing units distributed a certain distance from each other along a line, and combining with a special signal processing method, thereby realizing a function of being capable of monitoring multi-dimensional spatial position information of the disturbance source in real time in both short and long distances.

Classes IPC  ?

  • G01D 5/353 - Moyens mécaniques pour le transfert de la grandeur de sortie d'un organe sensibleMoyens pour convertir la grandeur de sortie d'un organe sensible en une autre variable, lorsque la forme ou la nature de l'organe sensible n'imposent pas un moyen de conversion déterminéTransducteurs non spécialement adaptés à une variable particulière utilisant des moyens optiques, c.-à-d. utilisant de la lumière infrarouge, visible ou ultraviolette avec atténuation ou obturation complète ou partielle des rayons lumineux les rayons lumineux étant détectés par des cellules photo-électriques en modifiant les caractéristiques de transmission d'une fibre optique
  • G01H 9/00 - Mesure des vibrations mécaniques ou des ondes ultrasonores, sonores ou infrasonores en utilisant des moyens sensibles aux radiations, p. ex. des moyens optiques

39.

THREE-DIMENSIONAL MULTI-VIEWPOINT DISPLAY APPARATUS AND MANUFACTURING METHOD

      
Numéro d'application CN2020120577
Numéro de publication 2022/061977
Statut Délivré - en vigueur
Date de dépôt 2020-10-13
Date de publication 2022-03-31
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s) Zhou, Changhe

Abrégé

Provided are a three-dimensional multi-viewpoint display apparatus and manufacturing method; the three-dimensional multi-viewpoint display apparatus comprises, in sequence, a display screen (1), a three-dimensional multi-viewpoint display grating, and a multi-viewpoint three-dimensional window (4); the three-dimensional multi-viewpoint display grating consists of a turning grating (2) of a first layer and a pixel grating of a second layer (3); the turning grating (2) being a tilting grating, a blazed grating, or a continuous grayscale grating; the pixel grating (3) corresponds to each pixel on the display screen (1), and diffracts the red, green, and blue light from each pixel of the display screen (1) to the multi-viewpoint area of the multi-viewpoint three-dimensional window (4), achieving three-dimensional multi-viewpoint display. The three-dimensional multi-viewpoint display double-layer grating can be produced and replicated in large volumes, and can be widely used in the field of three-dimensional display screens.

Classes IPC  ?

  • G02B 30/34 - Stéréoscopes fournissant une paire stéréoscopique d'images séparées correspondant à des vues déplacées parallèlement du même objet, p. ex. visionneuses de diapositives 3D
  • G02F 1/1335 - Association structurelle de cellules avec des dispositifs optiques, p. ex. des polariseurs ou des réflecteurs
  • G02B 5/18 - Grilles de diffraction

40.

Integrated super-resolution laser direct-writing device and direct-writing method

      
Numéro d'application 17420384
Numéro de brevet 11726407
Statut Délivré - en vigueur
Date de dépôt 2018-12-17
Date de la première publication 2022-03-24
Date d'octroi 2023-08-15
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Zeng, Aijun
  • Liu, Tiecheng
  • Hu, Jingpei
  • Zhu, Linglin
  • Huang, Huijie

Abrégé

Provided are an integrated super-resolution laser direct-writing device and a direct-writing method. The integrated super-resolution laser direct-writing device includes a first continuous laser, a first optical fiber coupler, a mono-mode optical fiber, a second continuous laser, a second optical fiber coupler, a first annular photonic crystal fiber, a bifurcated optical fiber, a lens group, a first dichroic mirror, an LED light source, a lens, a second dichroic mirror, an auto-focusing module, a third dichroic mirror, a third optical fiber coupler, a square-law graded index fiber, a nanometer displacement table, a second lens, a CMOS camera and a control system. According to the present invention, an original large direct-writing device based on a free optical path can achieve optical fibers of key devices and integration of systems and can be better applied to the field of laser direct-writing.

Classes IPC  ?

  • G03F 7/20 - ExpositionAppareillages à cet effet

41.

THREE-AXIS GRATING RULER

      
Numéro d'application CN2020120568
Numéro de publication 2022/056971
Statut Délivré - en vigueur
Date de dépôt 2020-10-13
Date de publication 2022-03-24
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wei, Chunlong
  • Zhou, Changhe

Abrégé

A three-axis grating ruler, comprising a three-axis measurement light beam generation unit (101), an X-axis measurement light beam detection unit (104), a Y-axis measurement light beam detection unit (103), a Z-axis measurement light beam detection unit (102) and a signal acquisition and processing unit (38). The three-axis measurement light beam generation unit (101) comprises a polarization collimation laser light source (1), a beam splitting two-dimensional diffraction grating (2), a first collimation objective lens (8), a polarization prism assembly (1011), a second collimation objective lens (14) and a measurement two-dimensional diffraction grating (15). The beam splitting two-dimensional diffraction grating (2) and the measurement two-dimensional diffraction grating (15) are in two-dimensional orthogonal symmetry, and each have equal two-dimensional grating pitches. X-axis and Y-axis measurement light beam generation light paths have double optical subdivision and optical difference properties, the precision is high, and the installation tolerance is large; and an optical path of the measurement light beam generation unit and optical paths of the measurement light beam detection units jointly form an integrated three-dimensional displacement measurement homodyne grating interferometer, such that the structure is compact, the cost is low, and Abbe errors and cosine errors caused by the fact that the orthogonality and common intersection points are not met are avoided.

Classes IPC  ?

  • G01B 11/02 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la longueur, la largeur ou l'épaisseur

42.

PICOMETER RULER

      
Numéro d'application CN2020120368
Numéro de publication 2022/052197
Statut Délivré - en vigueur
Date de dépôt 2020-10-12
Date de publication 2022-03-17
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s) Zhou, Changhe

Abrégé

A picometer ruler. The picometer ruler is a picometer-scale metering tool, and is characterized in comprising an interference light field generation mechanism, a precision adjustment platform, and a detector which is in a transmission direction or a reflection direction of an interference light field, wherein the detector is used for recording an interference signal of the interference light field when the motion of the precision adjustment platform is measured, so as to realize picometer metering. The core of the picometer ruler is realizing metering and measurement by means of a picometer-structured light field. The picometer ruler can be used in scenarios, such as picometer photoetching, picometer measurement, picometer imaging and picometer cameras, that need picometer measurement, and is an essential metering tool for developing emerging disciplines such as picometer optical technology, picometer femtosecond optics, picometer attosecond optics, picometer physics, and picometer-scale light-matter interaction.

Classes IPC  ?

43.

Method for high-accuracy wavefront measurement base on grating shearing interferometry

      
Numéro d'application 17153783
Numéro de brevet 11340118
Statut Délivré - en vigueur
Date de dépôt 2021-01-20
Date de la première publication 2022-03-10
Date d'octroi 2022-05-24
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Lu, Yunjun
  • Tang, Feng
  • Wang, Xiangzhao

Abrégé

st-order diffracted beam is exactly extracted through phase shifting method, and the original wavefront is obtained by carrying out reconstruction algorithm according to a shear ratio of 2s, such that the accuracy of wavefront measurement of the optical imaging system under test is improved, wherein s is the shear ratio of the grating shearing interferometer.

Classes IPC  ?

  • G01J 9/02 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux par des méthodes interférométriques
  • G01B 9/02098 - Interféromètres à cisaillement
  • G01J 9/00 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux

44.

DICHROIC MIRROR BASED ON SANDWICH-LIKE STRUCTURE INTERFACE AND COMPOSITE MATERIAL AND PREPARATION METHOD THEREFOR

      
Numéro d'application CN2021110731
Numéro de publication 2022/042250
Statut Délivré - en vigueur
Date de dépôt 2021-08-05
Date de publication 2022-03-03
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Zhu, Meiping
  • Li, Jingping
  • Liu, Tianbao
  • Sun, Jian
  • Shao, Jianda

Abrégé

A dichroic mirror based on a sandwich-like structure interface and a composite material and a preparation method therefor. The method comprises: simultaneously depositing a material A having a refractive index greater than 1.8 and a material B having an optical band gap greater than 6.0 eV by using electron beam evaporation technology, so as to form a composite material to replace a single high refractive index material in a conventional dichroic mirror film as a high refractive index film layer H, and using a single low refractive index material C as a low refractive index film layer L; by controlling the deposition rates of the material A, material B, and material C, forming a transition interface of a sandwich-like structure between the high refractive index film layer and the low refractive index film layer, the transition interface structure being an A+B gradient material layer and a |A|A+C gradient material layer. In the present invention, the interface between a high refractive index film layer and a low refractive index film layer is designed as a transition interface of a sandwich-like structure, and performances such as an interface binding force of the dichroic mirror and a laser damage threshold can be improved without affecting the spectral performance of a thin film.

Classes IPC  ?

  • C23C 14/30 - Évaporation sous vide par énergie éléctromagnétique ou par rayonnement corpusculaire par bombardement d'électrons
  • C23C 14/10 - Verre ou silice
  • C23C 14/08 - Oxydes
  • C23C 14/54 - Commande ou régulation du processus de revêtement

45.

LASER TAILOR WELDING METHOD OF ALUMINUM-SILICON COATED STEEL

      
Numéro d'application CN2021088888
Numéro de publication 2022/016929
Statut Délivré - en vigueur
Date de dépôt 2021-04-22
Date de publication 2022-01-27
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Xu, Wei
  • Yang, Shanglu
  • Tao, Wu

Abrégé

A laser tailor welding method of aluminum-silicon coated steel, comprising the following steps: selecting a stainless steel welding wire having a high molybdenum content (6); taking two steel plates (1, 2) having an aluminum-silicon coating (3, 4); implementing laser filler wire tailor welding; and carrying out hot stamping after welding.

Classes IPC  ?

  • B23K 26/211 - Assemblage par soudage avec interposition de matériau particulier pour faciliter la connexion des parties
  • B23K 26/60 - Traitement préliminaire
  • B23K 26/70 - Opérations ou équipement auxiliaires

46.

SOLDER FOR LASER WELDING COATED STEEL PLATE, AND LASER WELDING METHOD

      
Numéro d'application CN2021107326
Numéro de publication 2022/017374
Statut Délivré - en vigueur
Date de dépôt 2021-07-20
Date de publication 2022-01-27
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Xu, Wei
  • Yang, Shanglu
  • Tao, Wu

Abrégé

A method for laser welding aluminium-silicon coated steel, comprising the following steps: selecting a welding wire having high molybdenum content; acquiring two steel plates (1, 2) having aluminium-silicon coatings (4); carrying out butt-joint laser welding with filler wire; and performing hot stamping after welding. The method does not require the coating to be removed, and aluminium-silicon coated steel can be spliced simply by filling the welding wire. After hot stamping, the welded joint has the same strength and toughness as the base material, thereby improving product quality and production efficiency. The present disclosure also relates to the welding wire used in the method and a welding area formed.

Classes IPC  ?

  • B23K 26/21 - Assemblage par soudage
  • B23K 26/08 - Dispositifs comportant un mouvement relatif entre le faisceau laser et la pièce

47.

PROCESSING METHOD WITHOUT INTERMEDIATE-FREQUENCY ERROR UNDER MAGNETORHEOLOGICAL POLISHING MAGIC ANGLE-STEP

      
Numéro d'application CN2020107306
Numéro de publication 2022/007084
Statut Délivré - en vigueur
Date de dépôt 2020-08-06
Date de publication 2022-01-13
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wei, Chaoyang
  • Wan, Songlin
  • Shao, Jianda
  • Gu, Haojin

Abrégé

A processing method without intermediate-frequency error under a magnetorheological polishing magic angle-step. The method comprises the steps of: firstly, performing measurement to obtain a magnetorheological removal function, and also determining the control precision of a machine tool; performing a two-dimensional Fourier transform on the removal function, performing compensation filtering on a spectrum on the basis of the control precision of the machine tool, and analyzing a corresponding step of the lowest amplitude point of the filtered two-dimensional spectrum in a magic angle direction; planning a grid path at a given step on the basis of adjusting the direction of a processing path or an attitude of a magnetorheological polishing wheel such that the included angle between the polishing wheel and the path is a magic angle; and finally, controlling the processing of the machine tool. By means of the method, no additional cost is needed; only the included angle between a removal function and a path, and a path step need to be changed to optimal values obtained by means of theoretical analysis; and the amplitude of a trajectory-like intermediate-frequency error can theoretically be far lower than that of other processing noises and thus disappear, such that processing without an intermediate frequency can be realized, and a low-frequency and high-frequency error of an element is not affected.

Classes IPC  ?

  • B24B 1/00 - Procédés de meulage ou de polissageUtilisation d'équipements auxiliaires en relation avec ces procédés

48.

ULTRA-INTENSE CHIRPED LASER PULSE STEPWISE COMPRESSION DEVICE

      
Numéro d'application CN2021076680
Numéro de publication 2021/248931
Statut Délivré - en vigueur
Date de dépôt 2021-02-18
Date de publication 2021-12-16
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Liu, Jun
  • Li, Ruxin

Abrégé

An ultra-intense chirped laser pulse stepwise compression device, comprising: a light beam smoothing and initial pre-compression module composed of negative dispersion elements such as a prism pair, a pulse main compression module composed of a grating compressor, etc., and a final compression module composed of spatial and temporal focusing and (or) a self-compression process in a transparent medium sheet. The present invention uses a smoothing function of the pre-compression module on the incident laser spatial intensity modulation, so that the laser spatial intensity modulation is reduced, and the damage of the laser spatial intensity modulation to incident and emergent gratings is reduced, thereby increasing the incident laser energy, and obtaining a stronger laser output at a single stage. In a pulse self-compression process of the final compression module, the spectrum can be further broadened, and the laser pulse can be compressed, so as to obtain a shorter laser pulse output.

Classes IPC  ?

  • H01S 3/10 - Commande de l'intensité, de la fréquence, de la phase, de la polarisation ou de la direction du rayonnement, p. ex. commutation, ouverture de porte, modulation ou démodulation
  • G02B 27/44 - Systèmes à réseauxRéseaux zonés
  • G02B 27/09 - Mise en forme du faisceau, p. ex. changement de la section transversale, non prévue ailleurs

49.

High laser damage threshold reflective light addressing liquid crystal spatial light modulator for linearly polarized light at 1053 nm

      
Numéro d'application 17119962
Numéro de brevet 11543692
Statut Délivré - en vigueur
Date de dépôt 2020-12-11
Date de la première publication 2021-11-18
Date d'octroi 2023-01-03
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Fan, Wei
  • Xing, Zhibo
  • Huang, Dajie
  • Cheng, He
  • Xia, Gang

Abrégé

A high laser damage threshold reflective optically addressed liquid crystal spatial light modulator for shaping 1053 nm linearly polarized light beams, comprising a computer-controlled LCoS electrical addressable spatial light modulator, polarization beam splitter, and polarizer, Liquid crystal cell, analyzer, AC power supply, where the liquid crystal cell comprises a transparent conductive film antireflection film layer, a transparent conductive film base layer, a first transparent conductive layer, a liquid crystal alignment layer, a liquid crystal layer, an alignment element, a reflective film layer, a light guide layer, and a second transparent conductive layer. By changing the transparent conductive layer material of the light-transmitting part of the liquid crystal cell from ITO to gallium nitride material, the damage threshold of the high-energy laser is improved, which facilitates application of beam shaping in high-power laser devices.

Classes IPC  ?

  • G02F 1/1333 - Dispositions relatives à la structure
  • G02F 1/1362 - Cellules à adressage par une matrice active
  • G02F 1/1335 - Association structurelle de cellules avec des dispositifs optiques, p. ex. des polariseurs ou des réflecteurs
  • G02F 1/1343 - Électrodes
  • G02F 1/1337 - Orientation des molécules des cristaux liquides induite par les caractéristiques de surface, p. ex. par des couches d'alignement

50.

ABSORPTIVE DEFECT SINGLE-BEAM PHOTOTHERMAL MEASUREMENT DEVICE AND MEASUREMENT METHOD

      
Numéro d'application CN2020092785
Numéro de publication 2021/227134
Statut Délivré - en vigueur
Date de dépôt 2020-05-28
Date de publication 2021-11-18
Propriétaire
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
  • SHANGHAI HENGYI OPTICS AND FINE MECHANICS CO., LTD (Chine)
Inventeur(s)
  • Liu, Shijie
  • Ni, Kaizao
  • Shao, Jianda
  • Wang, Weiwei
  • Xu, Tianzhu
  • Li, Ying Jia
  • Lu, Qi

Abrégé

An absorptive defect single-beam photothermal measurement device and measurement method. The device comprises common-optical-path and non-common-optical-path structures. According to the present invention, the optical path structure is simple and it is convenient to install and debug. The measurement result is stable, and a measurement signal anomaly caused by environmental vibration and sample inclination is avoided. By detecting power change of a light beam at the edge of a light spot, system measurement sensitivity is significantly improved.

Classes IPC  ?

  • G01N 21/95 - Recherche de la présence de criques, de défauts ou de souillures caractérisée par le matériau ou la forme de l'objet à analyser
  • G01N 21/896 - Défauts optiques dans ou sur des matériaux transparents, p. ex. distorsions, criques de surface
  • G01N 21/17 - Systèmes dans lesquels la lumière incidente est modifiée suivant les propriétés du matériau examiné

51.

Laser radar system apparatus for multi-wavelength measurement of atmospheric carbon dioxide concentration and vertical aerosol profile

      
Numéro d'application 17281054
Numéro de brevet 11397149
Statut Délivré - en vigueur
Date de dépôt 2019-07-23
Date de la première publication 2021-11-11
Date d'octroi 2022-07-26
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Chen, Weibiao
  • Zhu, Yadan
  • Liu, Jiqiao
  • Hou, Xia
  • Zhu, Xiaolei
  • Ma, Xiuhua
  • Zang, Huaguo
  • Li, Rui

Abrégé

A laser radar system apparatus for the multi-wavelength measurement of the atmospheric carbon dioxide concentration and a vertical aerosol profile, including: a laser transmitting unit; a dual-pulse laser capable of simultaneously transmitting laser having three wavelengths, i.e., 1572 nm, 1064 nm, and 532 nm; a transmitting beam expander; a receiving telescope system; a visual axis monitoring module; a photoelectric detection unit; and a data acquisition and processing unit. The laser that simultaneously outputs laser having three wavelengths is used in a laser radar system, and an optical differential absorption method and a high spectral resolution detection method are used, such that the atmospheric carbon dioxide concentration and the vertical aerosol profile can be measured simultaneously and high-precision aerosol monitoring is implemented during the high-precision obtaining of the concentration of the greenhouse gas carbon dioxide.

Classes IPC  ?

  • G01N 21/27 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes en utilisant la détection photo-électrique
  • G01N 21/25 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes
  • G01N 21/85 - Analyse des fluides ou solides granulés en mouvement
  • G01S 17/95 - Systèmes lidar, spécialement adaptés pour des applications spécifiques pour la météorologie

52.

Apparatus and method for coupling the spatial light to the optical fiber light for achieving the stability of an optical axis without a position detector

      
Numéro d'application 17271250
Numéro de brevet 11555971
Statut Délivré - en vigueur
Date de dépôt 2019-08-28
Date de la première publication 2021-11-04
Date d'octroi 2023-01-17
Propriétaire
  • SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
  • SHANGHAI ZHONGKE SHENGUANG OPTOELECTRONICS INDUSTRY CO., LTD. (Chine)
Inventeur(s)
  • Hou, Peipei
  • Sun, Jianfeng
  • Lu, Zhiyong
  • Zhou, Yu
  • Wang, Yiqun
  • Wang, Lijuan
  • Xi, Yueli

Abrégé

An apparatus and method herein efficiently couple spatial light to optical fiber light for achieving stability of an optical axis without a position sensor. The basic concept of the method includes: first, obtaining, according to a theoretical coupling efficiency model, a model parameter by means of fitting calculation; second, using a four-point tracking algorithm to calculate an optical fiber nutation trajectory according to the optical fiber nutation principle; and finally, using the nutation trajectory to calculate the position deviation of a central point. The optical axis is ensured to be stable by correcting the position deviation, and the high coupling efficiency remains. The method is used for the stability of the optical axis in a space coherent laser communication DPSK link. The high efficiency coupling is a key technology of long-distance, high bit rate transmission in space laser communication, and is significant in the development of inter-satellite optical communications.

Classes IPC  ?

  • G02B 6/42 - Couplage de guides de lumière avec des éléments opto-électroniques

53.

Laser driving device and method for enabling uniform light field

      
Numéro d'application 17221702
Numéro de brevet 11888282
Statut Délivré - en vigueur
Date de dépôt 2021-04-02
Date de la première publication 2021-10-14
Date d'octroi 2024-01-30
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Zhu, Jianqiang
  • Zhang, Xiaoqi
  • Tang, Gengxiu
  • Tao, Hua
  • Liu, Zhigang

Abrégé

A laser driving device and a method for enabling a uniform light field, wherein the laser driving device is a high-power laser driving device that enables a uniform light field on the basis of a narrow-band low-spatial-coherence light and is provided for laser fusion. The narrow-band low-spatial-coherence light is configured as a seed of the laser driving device, an amplification and transmission unit amplifies the seed, a frequency conversion unit converts a frequency of the laser, and a focusing component is configured for laser focusing and uniform illumination.

Classes IPC  ?

  • H01S 3/08 - Structure ou forme des résonateurs optiques ou de leurs composants
  • H01S 3/06 - Structure ou forme du milieu actif
  • H01S 3/109 - Multiplication de la fréquence, p. ex. génération d'harmoniques
  • H01S 3/094 - Procédés ou appareils pour l'excitation, p. ex. pompage utilisant le pompage optique par de la lumière cohérente

54.

Distributed fiber-optic acoustic sensing system and signal processing method using the same

      
Numéro d'application 17340529
Numéro de brevet 11946799
Statut Délivré - en vigueur
Date de dépôt 2021-06-07
Date de la première publication 2021-09-23
Date d'octroi 2024-04-02
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Cai, Haiwen
  • Lu, Bin
  • Wang, Zhaoyong
  • Ye, Lei
  • Ye, Qing
  • Qu, Ronghui

Abrégé

A distributed fiber-optic acoustic sensing system and a signal processing method. The distributed fiber-optic acoustic sensing system is based on a high spatial resolution distributed fiber-optic acoustic sensor. The interval between adjacent sensing units is centimeter or millimeter level. Through specific digital signal processing, signal enhancement can be realized, noise in the system and environment are suppressed, at the same time, problems such as interference fading is solved, and the sensor signal-to-noise ratio of subunits can be increased by two to three orders of magnitude. Each subunit can serve as an independent high-sensitivity sensor for sensing. The multiple subunits can form one or more new sensor arrays. The azimuth estimation and spatial orientation of signal sources can be realized by the array signal processing method.

Classes IPC  ?

  • G01H 9/00 - Mesure des vibrations mécaniques ou des ondes ultrasonores, sonores ou infrasonores en utilisant des moyens sensibles aux radiations, p. ex. des moyens optiques
  • G01D 5/353 - Moyens mécaniques pour le transfert de la grandeur de sortie d'un organe sensibleMoyens pour convertir la grandeur de sortie d'un organe sensible en une autre variable, lorsque la forme ou la nature de l'organe sensible n'imposent pas un moyen de conversion déterminéTransducteurs non spécialement adaptés à une variable particulière utilisant des moyens optiques, c.-à-d. utilisant de la lumière infrarouge, visible ou ultraviolette avec atténuation ou obturation complète ou partielle des rayons lumineux les rayons lumineux étant détectés par des cellules photo-électriques en modifiant les caractéristiques de transmission d'une fibre optique

55.

Photodarkening-resistant ytterbium-doped quartz optical fiber and preparation method therefor

      
Numéro d'application 16972358
Numéro de brevet 11780768
Statut Délivré - en vigueur
Date de dépôt 2019-06-06
Date de la première publication 2021-07-29
Date d'octroi 2023-10-10
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Hu, Lili
  • Lou, Fengguang
  • Yu, Chunlei
  • Wang, Meng
  • Zhang, Lei
  • Xu, Xiaoqing
  • Chen, Danping
  • Wang, Fan
  • Guo, Mengting

Abrégé

5: 1-5 mol %, respectively. In the preparation method for the photodarkening-resistant ytterbium-doped quartz optical fiber, a sol-gel method and an improved chemical vapor deposition method are combined. By using the molecular-level doping uniformity and the low preparation loss thereof respectively, ytterbium ions, aluminum ions and phosphorus ions are effectively doped in a quartz matrix, thereby effectively solving the problems in the optical fiber of high loss, photodarkening caused by cluster or the like, and a central refractive index dip.

Classes IPC  ?

  • C03C 13/04 - Fibres optiques, p. ex. compositions pour le cœur et la gaine de fibres
  • C03B 37/018 - Fabrication d'ébauches d'étirage de fibres ou de filaments obtenues totalement ou partiellement par des moyens chimiques par dépôt de verre sur un substrat de verre, p. ex. par dépôt chimique en phase vapeur
  • C03B 37/025 - Fabrication de fibres ou de filaments de verre par étirage ou extrusion à partir de tubes, tiges, fibres ou filaments ramollis par chauffage
  • G02B 6/036 - Fibres optiques avec revêtement le noyau ou le revêtement comprenant des couches multiples

56.

DISTRIBUTED OPTICAL FIBER ACOUSTIC SENSING SYSTEM AND SIGNAL PROCESSING METHOD

      
Numéro d'application CN2020092792
Numéro de publication 2021/147216
Statut Délivré - en vigueur
Date de dépôt 2020-05-28
Date de publication 2021-07-29
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Cai, Hai Wen
  • Lu, Bin
  • Wang, Zhaoyong
  • Ye, Lei
  • Ye, Qing
  • Qu, Ronghui

Abrégé

A distributed optical fiber acoustic sensing system. On the basis of a distributed optical fiber acoustic sensor having high spatial resolution, the interval between adjacent sensing units is a centimeter or millimeter level; by means of specific digital signal processing, signal enhancement can be realized and noise in the system and an environment can be suppressed; and meanwhile, the problems of interference fading, etc. are solved, and the signal-to-noise ratio of the sensor of a subunit thus can be improved by two to three magnitudes. The various sub-units can be used as independent high-sensitivity sensors for sensing, and a plurality of sub-units further can constitute one or more new sensing arrays to realize azimuth angle estimation and space positioning of a signal source by means of an array signal processing method. The system can solve the problems of interference fading and limited signal-to-noise ratio of distributed optical fiber sensors, and can construct a high signal-to-noise ratio sensor array without changing an optical fiber structure, thus achieving azimuth angle estimation and space positioning of a signal source and having important significance in the fields of ocean underwater acoustic detection, oil and gas exploration, etc. Further disclosed is a signal processing method for the distributed optical fiber acoustic sensing system.

Classes IPC  ?

  • G01H 9/00 - Mesure des vibrations mécaniques ou des ondes ultrasonores, sonores ou infrasonores en utilisant des moyens sensibles aux radiations, p. ex. des moyens optiques

57.

Light intensity fluctuation-insensitive projection objective wave aberration detection device and detection method thereof

      
Numéro d'application 17033669
Numéro de brevet 11215512
Statut Délivré - en vigueur
Date de dépôt 2020-09-25
Date de la première publication 2021-07-08
Date d'octroi 2022-01-04
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Tang, Feng
  • Wang, Xiangzhao
  • Lu, Yunjun
  • Peng, Changzhe
  • Liu, Yang

Abrégé

A light intensity fluctuation-insensitive projection objective wave aberration detection device and a detection method thereof, comprising a light source and illumination system, an object plane marking plate, an object plane displacement table, a tested projection objective, an image plane marking plate, a two-dimensional photosensor, an image plane displacement table and a control processing unit; the object plane marking plate and the image plane marking plate are provided with grating marks for shear interference test and marks for light intensity test, the shear interferograms and the light intensity information are simultaneously received through the two-dimensional photosensor, the light intensity fluctuation error corresponding to each phase-shifting interferogram is corrected through the light intensity information, improving the detection precision, reducing the complexity and the cost of the system, and improving the detection speed.

Classes IPC  ?

  • G01J 9/02 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux par des méthodes interférométriques
  • G01B 9/02 - Interféromètres
  • G01M 11/02 - Test des propriétés optiques
  • G03F 7/20 - ExpositionAppareillages à cet effet

58.

Single-shot Fresnel non-coherent correlation digital holographic device based on polarization-oriented planar lens

      
Numéro d'application 17171561
Numéro de brevet 11720060
Statut Délivré - en vigueur
Date de dépôt 2021-02-09
Date de la première publication 2021-06-17
Date d'octroi 2023-08-08
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Liu, Jun
  • Liang, Dong
  • Zhang, Qiu

Abrégé

A single-shot Fresnel non-coherent correlation digital holographic device based on a polarization-oriented planar lens, comprising: A polarization-oriented planar lens (1) for wavefront modulation and beam splitting, a focusing element (2), a half-wave plate (3) with a small hole and a polarization imaging camera (4). Incident light passes through the polarization-oriented planar lens (1) and the focusing element (2) and is divided into two beams with different polarizations, that is, focused and parallel or focused and divergent beams, wherein the focused beam passes through the small hole of the half-wave plate (3), the parallel or divergent beam passes through the half-wave plate (3), so as to make the polarization of the two beams consistent behind pass through the half-wave plate (3).

Classes IPC  ?

  • G03H 1/04 - Procédés ou appareils pour produire des hologrammes
  • G03H 1/06 - Procédés ou appareils pour produire des hologrammes utilisant de la lumière non cohérente
  • G03H 1/22 - Procédés ou appareils pour obtenir une image optique à partir d'un hologramme

59.

PICO-MICROSCOPE

      
Numéro d'application CN2019122872
Numéro de publication 2021/097921
Statut Délivré - en vigueur
Date de dépôt 2019-12-04
Date de publication 2021-05-27
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s) Zhou, Changhe

Abrégé

A pico-microscope, comprising a picometer illumination light field generation mechanism. A picometer-scale optical probe output by the mechanism illuminates a measurement object (40), such that picometer-scale information of the measurement object is obtained using a picometer microscopic imaging lens (50) and a picometer microscopic detector (60). The invention facilitates the developments of picometer photoetching, picometer measurement, and picometer-scale nonlinear optical techniques, proposes research directions for emerging disciplines such as picometer femtosecond optics and picometer attosecond optics, and can be widely applied to various fields such as semiconductor photoetching, picometer physics, and interaction of light and matter in the picometer scale.

Classes IPC  ?

  • G01B 11/00 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques
  • G02B 21/06 - Moyens pour éclairer un échantillon
  • G02B 5/18 - Grilles de diffraction

60.

Resistance spot welding electrode cap

      
Numéro d'application 17046830
Numéro de brevet 11890701
Statut Délivré - en vigueur
Date de dépôt 2018-12-18
Date de la première publication 2021-05-20
Date d'octroi 2024-02-06
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Wang, Yanjun
  • Tao, Wu

Abrégé

A resistance spot welding electrode cap contains a groove at the center of the welding contact interface. During welding, because of the groove, the area of contact between the electrode cap and a metal workpiece to be soldered is reduced. In the initial stage, the overall heat generation is concentrated on the outer ring of the weld point and heat dissipation becomes slower, helping a weld nugget to form from the outside to the inside. Due to the presence of the groove, the metal workpiece expands toward the groove at the center of the electrode, thereby increasing the size of the weld nugget and reducing splash and deformation. In comparison with conventional electrode caps, the welding current required to form weld points of the same size is lower, saving on electricity costs, and weld points obtained using the same current have higher strength and stability with fewer welding defects.

Classes IPC  ?

  • B23K 35/02 - Baguettes, électrodes, matériaux ou environnements utilisés pour le brasage, le soudage ou le découpage caractérisés par des propriétés mécaniques, p. ex. par la forme
  • B23K 11/11 - Soudage par points
  • B23K 11/30 - Caractéristiques relatives aux électrodes
  • B23K 11/16 - Soudage par résistance tenant compte des propriétés du métal à souder

61.

Method for rapid growth of long seed KDP-type crystals

      
Numéro d'application 17159106
Numéro de brevet 11486053
Statut Délivré - en vigueur
Date de dépôt 2021-01-26
Date de la première publication 2021-05-20
Date d'octroi 2022-11-01
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Wang, Bin
  • Qi, Hongji
  • Shao, Jianda
  • Chen, Duanyang

Abrégé

A pyramidal growth method for long-seed KDP-type crystal. In the growth method provided by the present invention, the lower end of the long-seed crystal is restricted by a lower tray, and the upper end is free to grow into a pyramidal. At the same time, the four prismatic faces at two directions of [100] and [010] can grow, avoiding growth stress problem during crystal growth, and all cut optical elements have high optical quality. Because the growth process is that four prismatic faces with highly similar growth environments grow at the same time and stirring is applied by blade-like stirring paddles during the crystal growth process, the cut optical elements have high optical uniformity.

Classes IPC  ?

  • C30B 7/08 - Croissance des monocristaux à partir de solutions en utilisant des solvants liquides à la température ordinaire, p. ex. à partir de solutions aqueuses par refroidissement de la solution
  • G02F 1/35 - Optique non linéaire
  • C30B 29/14 - Phosphates
  • G02F 1/355 - Optique non linéaire caractérisée par les matériaux utilisés

62.

Radial servo device for super-resolution optical disc and servo control method therefor

      
Numéro d'application 17050271
Numéro de brevet 11227632
Statut Délivré - en vigueur
Date de dépôt 2019-04-16
Date de la première publication 2021-05-20
Date d'octroi 2022-01-18
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Ruan, Hao
  • Hu, Qiao
  • Yuan, Xupeng
  • Guo, Xinjun

Abrégé

A radial servo control device for a super-resolution optical disc includes an excitation light source, a servo light source, an integrated optical path, focusing units, a servo light detecting unit and a drive control unit; the drive control unit presets N detection error reference values with respect to each guide layer trench irradiated by servo light, and controls corresponding positions of the focusing units in N data tracks below each guide layer trench according to a comparison result between a detection result of servo reflected light and the detection error reference values. The device is applicable to a variety of super-resolution optical discs on the basis of stimulated radiation loss microscopy technology, a two-photon absorption technology, and the like, and achieves accurate radial servo control of super-resolution data tracks (<100 nm) without reducing the wavelength of servo light and the width of guide layer trenches.

Classes IPC  ?

  • G11B 7/09 - Dispositions ou montage des têtes ou des sources lumineuses par rapport aux supports d'enregistrement comportant des dispositions pour déplacer le rayon lumineux ou son plan focal dans le but de maintenir l'alignement relatif du rayon lumineux et du support d'enregistrement pendant l'opération de transduction, p. ex. pour compenser les irrégularités de surface ou pour suivre les pistes du support
  • G11B 7/08 - Dispositions ou montage des têtes ou des sources lumineuses par rapport aux supports d'enregistrement
  • G11B 7/085 - Dispositions ou montage des têtes ou des sources lumineuses par rapport aux supports d'enregistrement comportant des dispositions pour amener le rayon lumineux dans sa position de travail ou pour l'en écarter

63.

METASURFACE SPARSE APERTURE LENS

      
Numéro d'application CN2019117748
Numéro de publication 2021/077485
Statut Délivré - en vigueur
Date de dépôt 2019-11-13
Date de publication 2021-04-29
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Hu, Jing Pei
  • Liu, Tie Cheng
  • Zeng, Ai Jun
  • Zhu, Ling Lin
  • Huang, Hui Jie

Abrégé

A metasurface sparse aperture lens (101), comprising a plurality of sub-lenses (102) arranged in a certain sequence; each sub-lens (102) comprises a plurality of microstructures (103) and a substrate (104) supporting the microstructures (103), and all of the sub-lenses (102) jointly form a metasurface sparse aperture lens (101). Phase information corresponding to the metasurface sparse aperture lens (101) may be determined by the wavelength of incident light and the focal length of the lens. By using sparse aperture technology, the same spatial resolution as a large-aperture optical system may be obtained by means of an array system of the sub-lenses (102), thereby reducing the difficulty of preparation and processing costs of a large-aperture super lens (101). The present invention has high application value in the miniaturization and integration of microscopic imaging systems and endoscopic imaging systems and like aspects.

Classes IPC  ?

  • G02B 1/00 - Éléments optiques caractérisés par la substance dont ils sont faitsRevêtements optiques pour éléments optiques
  • G02B 3/00 - Lentilles simples ou composées

64.

Picometer optical comb, and device and method for generating the same

      
Numéro d'application 17120074
Numéro de brevet 12025819
Statut Délivré - en vigueur
Date de dépôt 2020-12-11
Date de la première publication 2021-04-01
Date d'octroi 2024-07-02
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s) Zhou, Changhe

Abrégé

A picometer optical comb and a device and a method for generating the same, wherein the picometer optical comb is a special grating with continuously variable widths of adjacent grating lines, wherein the width of each grating line is different from that of the adjacent grating line by a fixed difference in the magnitude of picometer to nanometer. The picometer optical comb provides a reference for picometer measurement. The picometer optical comb can generate a diffraction optical field distribution different from that of a traditional grating, which brings a new diffraction effect, achieves new diffraction optical functions, and provides tools such as picometer photolithography, picometer measurement, picometer imaging and the like. The picometer optical comb plays an important role in the fields of semiconductor photolithography, life science, interaction of light and substances in picometer scale.

Classes IPC  ?

  • G02B 5/18 - Grilles de diffraction
  • G02F 1/21 - Dispositifs ou dispositions pour la commande de l'intensité, de la couleur, de la phase, de la polarisation ou de la direction de la lumière arrivant d'une source lumineuse indépendante, p. ex. commutation, ouverture de porte ou modulationOptique non linéaire pour la commande de l'intensité, de la phase, de la polarisation ou de la couleur par interférence
  • G03F 7/00 - Production par voie photomécanique, p. ex. photolithographique, de surfaces texturées, p. ex. surfaces impriméesMatériaux à cet effet, p. ex. comportant des photoréservesAppareillages spécialement adaptés à cet effet

65.

Debris-free laser ablation processing assisted by condensed frost layer

      
Numéro d'application 17026096
Numéro de brevet 11597035
Statut Délivré - en vigueur
Date de dépôt 2020-09-18
Date de la première publication 2021-03-25
Date d'octroi 2023-03-07
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Liao, Yang
  • Yue, Yan
  • Wang, Xuan
  • Chen, Junchi
  • Peng, Yujie
  • Leng, Yuxin

Abrégé

Laser ablation processing method for debris-free and efficient removal of materials comprises the step of using a refrigeration device to condense the water vapor and form a thin frost layer on the materials at temperatures below the freezing point. The residual debris produced during the ablation process deposits on the frost layer that covers the material, which is easily removed when the frost layer melts. At the same time, the frost layer in the laser irradiation area melts to a liquid layer, which can effectively reduce the deposition of debris on the inner wall of the groove and thus improve the efficiency and quality of laser ablation. The method is applicable to debris-free laser processing on an arbitrary curved surface.

Classes IPC  ?

  • B23K 26/16 - Enlèvement de résidus, p. ex. des particules ou des vapeurs produites pendant le traitement de la pièce à travailler
  • B23K 26/0622 - Mise en forme du faisceau laser, p. ex. à l’aide de masques ou de foyers multiples par commande directe du faisceau laser par impulsions de mise en forme
  • B23K 26/70 - Opérations ou équipement auxiliaires
  • B23K 26/36 - Enlèvement de matière
  • B23K 26/38 - Enlèvement de matière par perçage ou découpage
  • B23K 103/00 - Matières à braser, souder ou découper
  • G01N 1/42 - Traitement à basse température des échantillons, p. ex. cryofixation

66.

RADIATION-RESISTANT LASER OPTICAL FIBER PREFORM CORE ROD AND PREPARATION METHOD THEREFOR

      
Numéro d'application CN2020099708
Numéro de publication 2021/051954
Statut Délivré - en vigueur
Date de dépôt 2020-07-01
Date de publication 2021-03-25
Propriétaire SHANGHAI INSTITUTES OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Shao, Chongyun
  • Hu, Lili
  • Yu, Chunlei
  • Lou, Fengguang
  • Wang, Meng
  • Jiao, Yan
  • Zhang, Lei
  • Wang, Shikai
  • Xu, Xiaoqing

Abrégé

A radiation-resistant laser optical fiber preform core rod and a preparation method therefor. Specifically, provided is a radiation-resistant laser optical fiber preform core rod. Said core rod at least comprises one type of activated ion Yb 3+or Er 3+and one or more types of co-doped ion Al 3+, P 5+, Ge 4+, Ce 3+or F -, and -OD group of 16-118 ppm. Also provided is a preparation method for the radiation-resistant laser optical fiber preform core rod, and the irradiation resistance of core rod glass can be effectively improved by sequentially performing pre-treatments, i.e. deuterium carrying, pre-irradiation and thermal annealing on a preform core rod. The electron paramagnetic resonance test shows that, under the same radiation condition, the radiation induced color center concentration in a preform core rod treated by the method above is lower than the radiation induced color center concentration in an untreated core rod by one or more orders of magnitude. The obtained core rod can be used for preparing a radiation-resistant rare earth-doped quartz optical fiber, and has the advantages of high laser slope efficiency, low background loss, being able to be used stably in a vacuum environment for a long time, etc.

Classes IPC  ?

  • C03C 13/04 - Fibres optiques, p. ex. compositions pour le cœur et la gaine de fibres
  • C03B 37/018 - Fabrication d'ébauches d'étirage de fibres ou de filaments obtenues totalement ou partiellement par des moyens chimiques par dépôt de verre sur un substrat de verre, p. ex. par dépôt chimique en phase vapeur
  • C03B 37/016 - Fabrication d'ébauches d'étirage de fibres ou de filaments obtenues totalement ou partiellement par des moyens chimiques par un procédé de réaction en phase liquide, p. ex. par une phase gel
  • C03B 37/025 - Fabrication de fibres ou de filaments de verre par étirage ou extrusion à partir de tubes, tiges, fibres ou filaments ramollis par chauffage

67.

Device and method for detecting projection objective wave-front aberration

      
Numéro d'application 16689023
Numéro de brevet 11029611
Statut Délivré - en vigueur
Date de dépôt 2019-11-19
Date de la première publication 2021-01-28
Date d'octroi 2021-06-08
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Tang, Feng
  • Peng, Changzhe
  • Wang, Xiangzhao
  • Lu, Yunjun
  • Li, Peng

Abrégé

Projection objective wave-front aberration detecting device and a detecting method thereof, wherein the projection objective wave-front aberration detecting device comprises a light source and illuminating system, an object plane grating, an object plane displacement stage, a measured projection objective, an image plane grating, a two-dimensional photoelectric sensor, an image plane displacement stage and a control processing unit. According to the invention, by controlling the length of the object plane grating line, or the periodic structure of the object plane grating perpendicular to the shearing diffraction direction, or the object plane grating to adopt a sinusoidal grating, or the image plane grating to adopt an amplitude-phase hybrid grating, the complexity of an interference field is reduced, and the wave-front aberration detection speed and precision are improved, and the precision and speed of in-situ wave-front aberration detection can be improved.

Classes IPC  ?

  • G03F 7/20 - ExpositionAppareillages à cet effet
  • G01J 9/02 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux par des méthodes interférométriques

68.

Surface defect measuring apparatus and method by microscopic scattering polarization imaging

      
Numéro d'application 17037606
Numéro de brevet 11175220
Statut Délivré - en vigueur
Date de dépôt 2020-09-29
Date de la première publication 2021-01-14
Date d'octroi 2021-11-16
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Shao, Jianda
  • Liu, Shijie
  • Ni, Kaizao
  • Wang, Shenghao
  • Zhou, You
  • Wang, Weiwei
  • Xu, Tianzhu
  • Lu, Qi

Abrégé

A surface defect measuring apparatus and method by microscopic scattering polarization imaging is provided. The apparatus mainly comprises a laser, a first converging lens, a rotary diffuser, a second converging lens, a diaphragm, a third converging lens, a pinhole, a fourth converging lens, a polarizer, a half-wave plate, a polarizing beam splitter, an X-Y translation stage, a sample, a microscope lens, a quarter-wave plate, a micro-polarizer array, a camera and a computer. The micro-polarizer array is adopted to realize real-time microscopic scattering polarization imaging of the surface defects; a polarization-degree image is calculated to improve the sensitivity for detecting the surface defects of the ultra-smooth element, and the effective detection of the surface defects of a high-reflective coating element is also realized, and the requirement for rapid detection of the surface defects of a meter-scale large-aperture ultra-smooth element can be met.

Classes IPC  ?

  • G01N 21/21 - Propriétés affectant la polarisation
  • G01N 21/49 - Dispersion, c.-à-d. réflexion diffuse dans un corps ou dans un fluide
  • G01N 21/88 - Recherche de la présence de criques, de défauts ou de souillures
  • G02B 21/08 - Condensateurs
  • G02B 21/00 - Microscopes

69.

MICROSCOPIC SCATTERING POLARIZATION IMAGING SURFACE DEFECT MEASURING DEVICE AND MEASURING METHOD

      
Numéro d'application CN2019101282
Numéro de publication 2021/003802
Statut Délivré - en vigueur
Date de dépôt 2019-08-19
Date de publication 2021-01-14
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Shao, Jianda
  • Liu, Shijie
  • Ni, Kaizao
  • Wang, Shenghao
  • Zhou, You
  • Wang, Weiwei
  • Xu, Tianzhu
  • Lu, Qi

Abrégé

A microscopic scattering polarization imaging surface defect measuring device and a measuring method. The device mainly comprises a laser (1), a first converging lens (2), a rotating diffuser (3), a second converging lens (4), an optical stop (5), a third converging lens (6), a pinhole (7), a fourth converging lens (8), a polarizer (9), a half-wave plate (10), a polarizing beam splitter (11), an X-Y displacement platform (12), a sample (13), a microscope lens (14), a quarter-wave plate (15), a micro polarizer array (16), a camera (17), and a computer (18). The device implements real-time microscopic scattering polarization imaging of surface defects by using a micro polarizer array (16). By calculating a degree-of-polarization image, the detection sensitivity of the surface defects of ultra-smooth elements is improved, the surface defects of high-reflection film elements are effectively detected, and the requirements for rapid detection of the surface defects of meter-scale large-diameter ultra-smooth elements can be satisfied.

Classes IPC  ?

  • G01N 21/88 - Recherche de la présence de criques, de défauts ou de souillures

70.

NON-CONTACT OPTICAL FIBER SURFACE TENSION LOADING MEASUREMENT DEVICE AND MEASUREMENT METHOD

      
Numéro d'application CN2019091645
Numéro de publication 2020/232782
Statut Délivré - en vigueur
Date de dépôt 2019-06-18
Date de publication 2020-11-26
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Liu, Kai
  • He, Bing
  • Zhou, Jun
  • Zhang, Haibo
  • Yang, Yifeng
  • Chen, Xiaolong

Abrégé

Disclosed are a non-contact optical fiber surface tension loading measurement device and measurement method. The device comprises a left optical fiber clamp (1), a right optical fiber clamp (2), a left optical fiber pressing block (3), a right optical fiber pressing block (4), a tension transmission mechanism (5), a rigid connection rod (6), a tension sensor (7), a tension measurement and control unit (8), a left bottom plate (9) and a linear displacement table (10). According to the device and the method, real-time changes in the surface tension of an optical fiber can be rapidly sensed, and the surface tension of the optical fiber can be precisely measured; meanwhile, whether the optical fiber (11) is bent or stretched can be indicated by means of a value obtained by calculation; according to the parameters, the movement of the linear displacement table (10) may be used to stretch or compress the surface tension of the optical fiber, and the surface tension of the optical fiber is controlled and kept balanced, and this has an important application value for device preparation of the optical fiber (11), an optical fiber beam combiner, a splitter and the like. The present invention has an important application value for loading specified tensions during the preparation of high-power optical fiber devices.

Classes IPC  ?

  • G01N 3/08 - Recherche des propriétés mécaniques des matériaux solides par application d'une contrainte mécanique par application d'efforts permanents de traction ou de compression

71.

PICOMETER OPTICAL COMB AND MANUFACTURING DEVICE AND METHOD FOR PICOMETER OPTICAL COMB

      
Numéro d'application CN2019122873
Numéro de publication 2020/224254
Statut Délivré - en vigueur
Date de dépôt 2019-12-04
Date de publication 2020-11-12
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s) Zhou, Changhe

Abrégé

A picometer optical comb (107), and a manufacturing device and manufacturing method for the picometer optical comb (107). The picometer optical comb (107) is a special optical grating of which the slot widths of adjacent gate lines are continuously variable, wherein the width of each gate slot differs from the width of the adjacent gate slot by a fixed difference value, such as Δd that may be from a picometer scale to a nanometer scale. The picometer optical comb (107) provides a datum for picometer measurement. The picometer optical comb generates a diffractive light field distribution different from the traditional optical grating, so that a new diffraction effect and a new diffraction optical function are achieved and tools for picometer photoetching, picometer measurement, picometer imaging and the like are provided; thus the picometer optical comb (107) would play an important role in multiple fields of semiconductor photoetching, bioscience, light-matter interaction in the picometer scale and the like.

Classes IPC  ?

72.

CUTTING TOOL AND METHOD FOR MAINTAINING WELDING ELECTRODE HAVING A CENTRAL DEPRESSION

      
Numéro d'application CN2020088502
Numéro de publication 2020/221362
Statut Délivré - en vigueur
Date de dépôt 2020-04-30
Date de publication 2020-11-05
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Wang, Yanjun
  • Tao, Wu

Abrégé

A cutting tool and a method for maintaining a welding electrode having a central depression. The cutting tool comprises a main body (1) and cutting components (2). The cutting components (2) are disposed in the main body (1) and comprise one or more cutting blades (21, 22). The cutting blades (21, 22) are distributed radially around the central axis of the main body at equal intervals. The cutting blades (21, 22) partition the main body into a plurality of cutting cavities (80a, 80b, 80c, 80d). Two cutting cavities are formed by the axial outer side surfaces of two ends of each cutting blade and the main body. At least one axial outer side surface of each cutting blade is provided with a cutting edge (3400). A protrusion is provided on the middle of each cutting edge. The axial projection shape of the protrusion is the same as the cross-sectional shape of the central depression of a welding electrode. The cutting tool can perform maintenance accurately, quickly and regularly to restore the original welding surface shape of the welding electrode having a central depression, thereby keeping a high welding quality and ensuring the normal and orderly progress of production activities.

Classes IPC  ?

  • B23K 11/30 - Caractéristiques relatives aux électrodes
  • B23B 5/16 - Machines ou dispositifs à tourner spécialement conçus pour un travail particulierAccessoires correspondants spécialement conçus à cet effet pour biseauter, chanfreiner, ou ébavurer les extrémités de barres ou de tubes

73.

METHOD FOR SINGLE-CONE GROWTH OF LONG SEED CRYSTAL FOR KDP-TYPE CRYSTAL

      
Numéro d'application CN2020076923
Numéro de publication 2020/207139
Statut Délivré - en vigueur
Date de dépôt 2020-02-27
Date de publication 2020-10-15
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Wang, Bin
  • Qi, Hongji
  • Shao, Jianda
  • Chen, Duanyang
  • Wang, Hu
  • Wang, Xiaoliang

Abrégé

Provided is a method for single-cone growth of long seed crystal for KDP-type crystal; in the growth method provided by the present invention, the lower end of a long seed crystal is restricted by a lower tray, and the upper end grows freely into a cone, while at the same time, four cylinders in the two directions of [100] and [010] can grow; there is no problem of growth stress during the process of crystal growth, and all cut optical components have high optical quality. The growth process is the simultaneous growth of four cylinders having highly similar growth environments, and stirring is performed by means of a blade-shaped stirring paddle during the process of crystal growth, therefore the cut optical components have high optical uniformity. Because of the uniqueness of the cutting angle of KDP crystal frequency tripled components, the crystal grown using the present invention has high cutting efficiency when cutting a frequency tripled component; furthermore, the area of the largest frequency tripled component that can be cut can be known in advance by means of the horizontal size of the grown crystal.

Classes IPC  ?

  • C30B 7/08 - Croissance des monocristaux à partir de solutions en utilisant des solvants liquides à la température ordinaire, p. ex. à partir de solutions aqueuses par refroidissement de la solution
  • C30B 29/14 - Phosphates

74.

LASER WELDING METHOD

      
Numéro d'application CN2020079968
Numéro de publication 2020/187260
Statut Délivré - en vigueur
Date de dépôt 2020-03-18
Date de publication 2020-09-24
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Tao, Wu

Abrégé

A laser welding method. The laser energy of multiple laser beams (21, 22) acts on the surface of an overlap joint material combination for a period of time to melt the material, and a weld joint (3) is formed after cooling and solidification, so as to achieve material connection. During the action, the laser beams remain unchanged in position or are moved arbitrarily within a circle having a diameter of 15 millimeters to obtain a large-size welding spot. The shape of the weld joint formed is a circular, elliptical, or arc-shaped contour. The number of the laser beams varies from 2 to 10, the laser beam spots may be in the shape of dots, annuli, polygons, or short lines, the diameter of the focused spot varies from 0.05 to 10 millimeters, the laser power varies from 0.1 to 50 kilowatts, the energy of the laser beams is output continuously or in the form of pulse, and the action duration ranges from 0.1 second to 10 seconds.

Classes IPC  ?

  • B23K 26/22 - Soudage par points
  • B23K 26/067 - Division du faisceau en faisceaux multiples, p. ex. foyers multiples

75.

Method for wavefront measurement of optical imaging system based on grating shearing interferometry

      
Numéro d'application 16684990
Numéro de brevet 11009336
Statut Délivré - en vigueur
Date de dépôt 2019-11-15
Date de la première publication 2020-09-17
Date d'octroi 2021-05-18
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (USA)
Inventeur(s)
  • Lu, Yunjun
  • Tang, Feng
  • Wang, Xiangzhao

Abrégé

A method for wavefront measurement of optical imaging system based on grating shearing interferometry, the grating shearing interferometer comprising: a light source and illumination system, an optical imaging system to be tested, a one-dimensional diffraction grating plate, a two-dimensional diffraction grating plate, a two-dimensional photoelectric sensor and a computing unit. The one-dimensional diffraction grating plate and the two-dimensional diffraction grating plate are respectively placed on the object side and the image side of the optical imaging system to be tested. By collecting N sets of interferograms with a phase-shifting interval (where, s is the shear ratio of the grating shearing interferometer), combined with a certain phase retrieval algorithm, the influence of all high-order diffraction beams on the phase retrieval accuracy is eliminated, and finally the wavefront measurement accuracy for the optical imaging system is improved.

Classes IPC  ?

  • G01B 9/02 - Interféromètres
  • G01J 9/02 - Mesure du déphasage des rayons lumineuxRecherche du degré de cohérenceMesure de la longueur d'onde des rayons lumineux par des méthodes interférométriques
  • G01M 11/02 - Test des propriétés optiques

76.

Method for detecting wavefront aberration for optical imaging system based on grating shearing interferometer

      
Numéro d'application 16685159
Numéro de brevet 10969274
Statut Délivré - en vigueur
Date de dépôt 2019-11-15
Date de la première publication 2020-09-17
Date d'octroi 2021-04-06
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Lu, Yunjun
  • Tang, Feng
  • Wang, Xiangzhao

Abrégé

Method for detecting wavefront aberration for optical imaging system based on grating shearing interferometer, the grating shearing interferometer system comprising a light source and illumination system, an optical imaging system to be tested, a one-dimensional diffraction grating plate, a two-dimensional diffraction grating plate, a two-dimensional photoelectric sensor, and a computing unit. The one-dimensional and two-dimensional diffraction grating plates are respectively placed on the object plane and the image plane of the optical imaging system to be tested. By collecting interferograms with phase-shifting amounts of 0, π/2, π, 3π/2 and N sets of α, π-α, 2π-α (where, s is the shear ratio of the grating shearing interferometer system), combined with a certain phase retrieval algorithm, the influence of all high-order diffraction beams on the phase retrieval accuracy is eliminated, and finally the detection accuracy of wavefront aberration for the imaging system to be tested is improved.

Classes IPC  ?

  • G01B 9/02 - Interféromètres
  • G01J 3/02 - SpectrométrieSpectrophotométrieMonochromateursMesure de la couleur Parties constitutives
  • G01J 3/10 - Aménagements de sources lumineuses spécialement adaptées à la spectrométrie ou à la colorimétrie
  • G01J 3/18 - Production du spectreMonochromateurs en utilisant des éléments diffractants, p. ex. réseaux

77.

Good-orientation, low-drift micro-movement subassembly for angle adjustment

      
Numéro d'application 16514911
Numéro de brevet 11092218
Statut Délivré - en vigueur
Date de dépôt 2019-07-17
Date de la première publication 2020-09-17
Date d'octroi 2021-08-17
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Zhu, Jianqiang
  • Tang, Gengxiu
  • Liu, Zhigang
  • Du, Lifeng
  • Pang, Xiangyang
  • Zhang, Chao

Abrégé

A good-orientation, low-drift micro-movement subassembly for angle adjustment as a precise driving screw for angle adjustment, comprising a slotted knurling handle, a turnbuckle and a central cylindrical shaft. The invention is precise for linear displacement, good orientation, low-drift, stable and reliable adjustment, which can be used for a variety of precision-oriented, small drift, precision micro-angle adjustment of the drive screw.

Classes IPC  ?

  • F16H 25/20 - Mécanismes à vis
  • F16H 57/04 - Caractéristiques relatives à la lubrification ou au refroidissement

78.

SIGNAL PROCESSING METHOD BASED ON DISTRIBUTED FIBER-OPTIC ACOUSTIC SENSOR

      
Numéro d'application CN2020072557
Numéro de publication 2020/181920
Statut Délivré - en vigueur
Date de dépôt 2020-01-16
Date de publication 2020-09-17
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Cai, Haiwen
  • Liang, Jiajing
  • Zheng, Hanrong
  • Wang, Zhaoyong
  • Lu, Bin
  • Ye, Qing

Abrégé

Provided is a signal processing method based on a distributed fiber-optic acoustic sensor; in said method, spatial position information of a signal source is obtained by means of pre-processing an acoustic field signal obtained by a sensing unit; then signal processing is performed on the described information, effectively suppressing system random noise introduced by the distributed fiber-optic acoustic sensing system itself, increasing system sensitivity, while also having the ability to enhance or suppress specific incoming and specific spatial position signals, enabling directional and fixed-point detection of perturbation signals. The present invention has advantages such as simple implementation, fast processing speed, strong interference-resistance capability, and obvious improvement of signal-to-noise ratio; further improves the ability of existing sensing systems to monitor target interference signals in a complex operating environment; is suitable for use in railway safety, oil and gas pipeline monitoring, perimeter security, and the like; and has great significance.

Classes IPC  ?

  • G01H 9/00 - Mesure des vibrations mécaniques ou des ondes ultrasonores, sonores ou infrasonores en utilisant des moyens sensibles aux radiations, p. ex. des moyens optiques

79.

Single shot autocorrelator for measuring the duration of an ultrashort pulse in the far field

      
Numéro d'application 16355679
Numéro de brevet 11086192
Statut Délivré - en vigueur
Date de dépôt 2019-03-15
Date de la première publication 2020-09-17
Date d'octroi 2021-08-10
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Yu, Jianwei
  • Zhu, Jianqiang
  • Ouyang, Xiaoping
  • Zhu, Baoqiang
  • Zeng, Peiying
  • Tang, Xiaoyun

Abrégé

A single shot autocorrelator for measuring duration of an ultrashort laser pulse in the far field, having a beam splitter to form two beams from an input ultrashort pulse: the reflected beam is firstly reflected by two mirrors mounted on a translation stage for adjusting time delay and subsequently a third mirror, and after focused by a spherical convex lens, enters a naturally grown strontium barium niobate crystal along the crystal z axis; the transmitted beam is firstly focused by a spherical convex lens, and after reflected by two mirrors, enters the crystal along the crystal z axis from opposite direction. The crystal is in the common focal regions of two spherical convex lenses and generates the transverse second harmonic pulse beam that is the autocorrelation signal to be recorded, which is imaged with an optical microscope onto a charge coupled device camera mounted perpendicular to the beams.

Classes IPC  ?

  • G02F 1/37 - Optique non linéaire pour la génération de l'harmonique deux
  • G01J 1/42 - Photométrie, p. ex. posemètres photographiques en utilisant des détecteurs électriques de radiations
  • G02B 21/36 - Microscopes aménagés pour la photographie ou la projection
  • G02F 1/355 - Optique non linéaire caractérisée par les matériaux utilisés
  • G01J 1/04 - Pièces optiques ou mécaniques
  • G01J 1/16 - Photométrie, p. ex. posemètres photographiques par comparaison avec une lumière de référence ou avec une valeur électrique de référence en utilisant des détecteurs électriques de radiations
  • G01J 1/44 - Circuits électriques

80.

SYSTEM FOR DETECTING MULTIPLE-VEHICLE COLLISION AND RELATED METHOD

      
Numéro d'application CN2020073051
Numéro de publication 2020/151627
Statut Délivré - en vigueur
Date de dépôt 2020-01-19
Date de publication 2020-07-30
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Cai, Haiwen
  • Li, Luchuan
  • Wang, Zhaoyong
  • Lu, Bin
  • Ye, Qing

Abrégé

The present application relates to the technical field of transportation, and discloses a novel system for detecting a multiple-vehicle collision and a related method. The system comprises: an optical fiber disposed at a roadside; a light source providing an optical signal to the optical fiber; a sensing device for detecting a phase change and/or a frequency shift of the optical signal in the optical fiber; and a collision detection device for identifying, according to the detected phase change and/or frequency shift of the optical signal in the optical fiber, whether a vehicle collision event has occurred. Implementation modes of the present application have the advantages of low costs, passive distribution, magnetic-interference prevention, and precise positioning, while also overcoming various shortcomings in conventional vehicle collision sensors such as complex installation, susceptibility to electromagnetic interference, and poor positioning accuracy.

Classes IPC  ?

  • G01L 5/00 - Appareils ou procédés pour la mesure des forces, du travail, de la puissance mécanique ou du couple, spécialement adaptés à des fins spécifiques
  • G01L 1/24 - Mesure des forces ou des contraintes, en général en mesurant les variations des propriétés optiques du matériau quand il est soumis à une contrainte, p. ex. par l'analyse des contraintes par photo-élasticité
  • G08C 17/02 - Dispositions pour transmettre des signaux caractérisées par l'utilisation d'une voie électrique sans fil utilisant une voie radio

81.

MULTI-DIMENSIONAL SPATIAL POSITIONING SYSTEM AND METHOD FOR DISTURBANCE SOURCE

      
Numéro d'application CN2019129929
Numéro de publication 2020/140869
Statut Délivré - en vigueur
Date de dépôt 2019-12-30
Date de publication 2020-07-09
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Cai, Haiwen
  • Liang, Jiajing
  • Wang, Zhaoyong
  • Lu, Bin
  • Ye, Qing

Abrégé

A multi-dimensional spatial positioning system and method for a disturbance source. The system includes a distributed optical fiber sensor (1), a sensing optical fiber (2), a coordinate system (3), a disturbance source to be monitored (4), a first signal group (5-1), and a second signal group (5-2). The disturbance source (4) is positioned by combining an array signal processing method with the distributed optical fiber sensor (1), using different laying manners for the sensing optical fiber (2) and a certain number of flexibly selected sensing units distributed a certain distance from each other along a line, and combining with a special signal processing method, thereby realizing a function of being capable of monitoring multi-dimensional spatial position information of the disturbance source (4) in real time in both short and long distances.

Classes IPC  ?

  • G01S 5/22 - Position de source déterminée par coordination de plusieurs lignes de position définies par des mesures de différence de parcours

82.

INTEGRATED SUPER-RESOLUTION LASER DIRECT-WRITING DEVICE AND DIRECT-WRITING METHOD

      
Numéro d'application CN2018121449
Numéro de publication 2020/113664
Statut Délivré - en vigueur
Date de dépôt 2018-12-17
Date de publication 2020-06-11
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Zeng, Ai Jun
  • Liu, Tie Cheng
  • Hu, Jing Pei
  • Zhu, Ling Lin
  • Huang, Hui Jie

Abrégé

An integrated super-resolution laser direct writing device and a direct writing method, the device comprises a continuous laser (1), a first optical fiber coupler (2), single-mode optical fibers (3), a second continuous laser (4), a second optical fiber coupler (5), first annular photonic crystal fibers (6), split fibers (7), a lens group (8), a first dichroic mirror (9), an LED light source (10), a lens (11), a second dichroic mirror (12), an automatic focusing module (13), a third dichroic mirror (14), a third optical fiber coupler (15), square-rate gradient fibers (16), a nano displacement table (17), a second lens (18), a CMOS camera (19) and a control system (20). The device implements the optical fiberization and system integration of key components, and can be better applied to the laser direct writing field.

Classes IPC  ?

  • G03F 7/20 - ExpositionAppareillages à cet effet

83.

NON-RAYLEIGH SPECKLE FIELD-BASED CORRELATED IMAGING SPECTRAL CAMERA AND IMAGING METHOD THEREFOR

      
Numéro d'application CN2019120100
Numéro de publication 2020/108388
Statut Délivré - en vigueur
Date de dépôt 2019-11-22
Date de publication 2020-06-04
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Han, Shensheng
  • Liu, Shengying
  • Liu, Zhentao
  • Wu, Jianrong
  • Li, Enrong
  • Sheng, Xia

Abrégé

A non-Rayleigh speckle field-based correlated imaging spectral camera and an imaging method therefor. A device comprises a front imaging camera (1), a beam splitter (2), a bandpass filter (3), a monitoring detector (4), a polarizer (5), a beam splitter (6), a spatial light modulator (7), a surface array detector (8), and a computer (9). By utilizing the reversible feature of a light path, a non-Rayleigh speckle field can be generated in a lens-less condition and be applied in a compression sensing-based correlated imaging spectral camera, where the utilization of a super-Rayleigh speckle field for imaging increases the quality and resolution of a reconstructed image in a low signal-to-noise condition.

Classes IPC  ?

84.

LASER RADAR SYSTEM APPARATUS FOR MULTI-WAVELENGTH MEASUREMENT OF ATMOSPHERIC CARBON DIOXIDE CONCENTRATION AND VERTICAL AEROSOL PROFILE

      
Numéro d'application CN2019097360
Numéro de publication 2020/063073
Statut Délivré - en vigueur
Date de dépôt 2019-07-23
Date de publication 2020-04-02
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Chen, Weibiao
  • Zhu, Yadan
  • Liu, Jiqiao
  • Hou, Xia
  • Zhu, Xiaolei
  • Ma, Xiuhua
  • Zang, Huaguo
  • Li, Rui

Abrégé

A laser radar system apparatus for the multi-wavelength measurement of the atmospheric carbon dioxide concentration and a vertical aerosol profile, comprising: a laser transmitting unit; a dual-pulse laser (4) capable of simultaneously transmitting laser having three wavelengths, i.e., 1572 nm, 1064 nm, and 532 nm; a transmitting beam expander (5); a receiving telescope system (6); a visual axis monitoring module (7); a photoelectric detection unit (9); and a data acquisition and processing unit (15). The laser (4) that simultaneously outputs laser having three wavelengths is used in a laser radar system, and an optical differential absorption method and a high spectral resolution detection method are used, such that the atmospheric carbon dioxide concentration and the vertical aerosol profile can be measured simultaneously and high-precision aerosol monitoring is implemented during the high-precision obtaining of the concentration of the greenhouse gas carbon dioxide.

Classes IPC  ?

  • G01S 17/95 - Systèmes lidar, spécialement adaptés pour des applications spécifiques pour la météorologie
  • G01S 17/00 - Systèmes utilisant la réflexion ou la reradiation d'ondes électromagnétiques autres que les ondes radio, p. ex. systèmes lidar

85.

APPARATUS AND METHOD FOR COUPLING SPATIAL LIGHT TO OPTICAL FIBER LIGHT FOR ACHIEVING STABILITY OF OPTICAL AXIS WITHOUT POSITION SENSOR

      
Numéro d'application CN2019103126
Numéro de publication 2020/043142
Statut Délivré - en vigueur
Date de dépôt 2019-08-28
Date de publication 2020-03-05
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Hou, Peipei
  • Sun, Jianfeng
  • Lu, Zhiyong
  • Zhou, Yu
  • Wang, Yiqun
  • Wang, Lijuan
  • Xi, Yueli

Abrégé

An apparatus and method for efficiently coupling the spatial light to the optical fiber light for achieving the stability of an optical axis without a position sensor. The basic concept of the method is: first, obtaining, according to a theoretical coupling efficiency model, a model parameter by means of fitting calculation; second, using a four-point tracking algorithm to calculate an optical fiber nutation trajectory according to the optical fiber nutation principle; finally, using the nutation trajectory to calculate the position deviation of a central point. The optical axis is ensured to be stable by correcting the position deviation, and the high coupling efficiency is always remained. The method is used for the stability of the optical axis without the position sensor in a space coherent laser communication DPSK link, and the high efficiency coupling, is a key technology of long-distance, high bit rate transmission in the space laser communication, and is significant in the development of inter-satellite optical communications.

Classes IPC  ?

86.

Microwave resonant cavity for laser cooling, microwave interrogation and atomic state detection in situ

      
Numéro d'application 16362588
Numéro de brevet 10749540
Statut Délivré - en vigueur
Date de dépôt 2019-03-22
Date de la première publication 2020-03-05
Date d'octroi 2020-08-18
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Lv, Desheng
  • Zhang, Zhen
  • Wang, Xinwen
  • Ren, Wei
  • Peng, Xiangkai
  • Liu, Kangkang
  • Xiang, Jingfeng
  • Liu, Liang

Abrégé

A microwave resonant cavity for laser cooling, microwave interrogation, and atomic state detection, comprising a microwave resonant cavity body, two cutoff waveguide end covers, and four waveguides for laser beams and microwave coupling. The cavity feeds not only microwave but also laser beams into the center of the cavity. In a vacuum chamber with target atoms, the target atoms may be trapped and cooled in the center of the cavity. By sequential operation of the resonant microwave and lasers, the microwave resonant cavity of the present invention may manipulate and detect the atomic state population and interrogate the energy level of the cold atoms in situ. The invention may be applied to the fields of atomic frequency standard, interferometer and atomic gyro for developing the miniaturized cold atoms related precision measurement equipment.

Classes IPC  ?

  • H03L 7/26 - Commande automatique de fréquence ou de phaseSynchronisation utilisant comme référence de fréquence les niveaux d'énergie de molécules, d'atomes ou de particules subatomiques
  • G04F 5/14 - Appareils pour la production d'intervalles de temps prédéterminés, utilisés comme étalons utilisant des horloges atomiques
  • H03B 17/00 - Production d'oscillations au moyen d'une source de rayonnement et d'un détecteur

87.

THREE-DIMENSIONAL IMAGING APPARATUS BASED ON K SPACE TRANSFORMATION AND IMAGING METHOD THEREOF

      
Numéro d'application CN2018114488
Numéro de publication 2020/037837
Statut Délivré - en vigueur
Date de dépôt 2018-11-08
Date de publication 2020-02-27
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Zhang, Xuedan
  • Liu, Cheng
  • Zhu, Jianqiang

Abrégé

A three-dimensional imaging method based on K space transformation, the method using sheet-shaped light to illuminate a sample along the direction of an optical axis, and using an identical sheet-shaped light source to interfere with the illuminating light; recording an interferogram and acquiring therefrom complex amplitude information (comprising the amplitude and phase) of the illuminated sample in the focal plane; spatial frequency spectrum information of the sample can be acquired by means of discrete Fourier transformation; using a projection method to calculate spatial frequency spectrum information perpendicular to the plane of the sample; by means of discrete Fourier inverse transformation, acquiring strength information perpendicular to the plane of the sample; and, by means of scanning, acquiring final three-dimensional structure information of the sample. The method has a high acquisition rate and high resolution, particularly for the acquisition of axial information, and only needs to perform acquisition once to implement imaging.

Classes IPC  ?

  • G01N 21/39 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes en recherchant l'effet relatif du matériau pour les longueurs d'ondes caractéristiques d'éléments ou de molécules spécifiques, p. ex. spectrométrie d'absorption atomique en utilisant des lasers à longueur d'onde réglable
  • G01N 21/47 - Dispersion, c.-à-d. réflexion diffuse

88.

SINGLE-SHOT FRESNEL NON-COHERENT CORRELATION DIGITAL HOLOGRAPHIC DEVICE BASED ON POLARIZATION-ORIENTED PLANAR LENS

      
Numéro d'application CN2019084899
Numéro de publication 2020/034662
Statut Délivré - en vigueur
Date de dépôt 2019-04-29
Date de publication 2020-02-20
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Liu, Jun
  • Liang, Dong
  • Zhang, Qiu

Abrégé

A single-shot Fresnel non-coherent correlation digital holographic device based on a polarization-oriented planar lens, comprising: A polarization-oriented planar lens (1) for wavefront modulation and beam splitting, a focusing element (2), a half-wave plate (3) with a small hole and a polarization imaging camera (4). Incident light passes through the polarization-oriented planar lens (1) and the focusing element (2) and is divided into two beams with different polarizations, that is, focused and parallel or focused and divergent beams, wherein the focused beam passes through the small hole of the half-wave plate (3), the parallel or divergent beam passes through the half-wave plate (3), so as to make the polarization of the two beams consistent behind pass through the half-wave plate (3). The holographic device performs wavefront modulation and beam splitting by using the characteristics of the polarization-oriented planar lens (1) sensitive to circularly polarized light, implements single-shot measurement of an imaging object by using a micro-polarization array in the polarization imaging camera (4), and has the advantages of being compact in structure, economical and practical, convenient to construct and easy to modulate.

Classes IPC  ?

  • G03H 1/06 - Procédés ou appareils pour produire des hologrammes utilisant de la lumière non cohérente

89.

Device and method for measuring in-situ time-resolved X-ray absorption spectrum

      
Numéro d'application 16569570
Numéro de brevet 10969348
Statut Délivré - en vigueur
Date de dépôt 2019-09-12
Date de la première publication 2020-01-02
Date d'octroi 2021-04-06
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Shao, Jianda
  • Liu, Shijie
  • Wang, Shenghao

Abrégé

Device and method for measuring in-situ time-resolved X-ray absorption spectrum. The device comprises an X-ray source, a first slit, an acousto-optic tunable X-ray filter, a radio frequency transmitter, a second slit, a front ionization chamber, a front ionization chamber signal amplifier, a sample to be tested, a rear ionization chamber, a rear ionization chamber signal amplifier, a data collector, and a computer. The X-ray source, the acousto-optic tunable X-ray filter, and the radio frequency transmitter are used to generate a monochromatic X-ray beam; the front ionization chamber is used to measure the intensity of the X-ray beam before passing through the sample; the rear ionization chamber is used to measure the intensity of the X-ray beam after passing through the sample; the front ionization chamber signal amplifier, the rear ionization chamber signal amplifier, the data collector, and the computer are used for data acquisition and data processing.

Classes IPC  ?

  • G01N 23/083 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en transmettant la radiation à travers le matériau et mesurant l'absorption le rayonnement consistant en rayons X

90.

PHOTODARKENING-RESISTANT YTTERBIUM-DOPED QUARTZ OPTICAL FIBER AND PREPARATION METHOD THEREFOR

      
Numéro d'application CN2019090432
Numéro de publication 2019/233487
Statut Délivré - en vigueur
Date de dépôt 2019-06-06
Date de publication 2019-12-12
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Lou, Fengguang
  • Hu, Lili
  • Yu, Chunlei
  • Wang, Meng
  • Zhang, Lei
  • Xu, Xiaoqing
  • Chen, Danping

Abrégé

23232522323252323255: 1-5 mol%, respectively. A preparation method for the photodarkening-resistant ytterbium-doped quartz optical fiber. A sol-gel method and an improved chemical vapor deposition method are combined, and by using the molecular-level doping uniformity and the low preparation loss thereof respectively, ytterbium ions, aluminum ions and phosphorus ions are effectively doped in a quartz matrix, thereby effectively solving the problems in the optical fiber of high loss, photodarkening caused by cluster or the like, and a central refractive index dip.

Classes IPC  ?

  • C03B 37/018 - Fabrication d'ébauches d'étirage de fibres ou de filaments obtenues totalement ou partiellement par des moyens chimiques par dépôt de verre sur un substrat de verre, p. ex. par dépôt chimique en phase vapeur
  • C03B 37/025 - Fabrication de fibres ou de filaments de verre par étirage ou extrusion à partir de tubes, tiges, fibres ou filaments ramollis par chauffage
  • C03C 13/04 - Fibres optiques, p. ex. compositions pour le cœur et la gaine de fibres

91.

Doped gallium oxide crystalline material and preparation method and application thereof

      
Numéro d'application 16508211
Numéro de brevet 11098416
Statut Délivré - en vigueur
Date de dépôt 2019-07-10
Date de la première publication 2019-11-21
Date d'octroi 2021-08-24
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Xia, Changtai
  • Sai, Qinglin
  • Zhou, Wei
  • Ql, Hongji

Abrégé

3 crystalline material with n-type conductivity characteristics by conventional processes, providing a basis for applications thereof to electrically powered electronic devices, optoelectronic devices, photocatalysts or conductive substrates.

Classes IPC  ?

  • C30B 29/16 - Oxydes
  • C01G 15/00 - Composés du gallium, de l'indium ou du thallium
  • C30B 13/00 - Croissance des monocristaux par fusion de zoneAffinage par fusion de zone
  • C30B 33/02 - Traitement thermique
  • H01L 31/032 - Matériaux inorganiques comprenant, à part les matériaux de dopage ou autres impuretés, uniquement des composés non couverts par les groupes
  • H01L 33/26 - Matériaux de la région électroluminescente
  • H01B 1/08 - Conducteurs ou corps conducteurs caractérisés par les matériaux conducteurs utilisésEmploi de matériaux spécifiés comme conducteurs composés principalement d'autres substances non métalliques oxydes

92.

Method for preparing film micro-optical structure based on photolithography and chemomechanical polishing

      
Numéro d'application 16404735
Numéro de brevet 10670806
Statut Délivré - en vigueur
Date de dépôt 2019-05-06
Date de la première publication 2019-11-14
Date d'octroi 2020-06-02
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Cheng, Ya
  • Wu, Rongbo
  • Lin, Jintian
  • Zhang, Jianhao
  • Wang, Min

Abrégé

Method for preparing micro-optical structure on a film based on chemical mechanical polishing etching, combining photolithography technology with chemical mechanical polishing technology to make preparation and large-scale integration of large-size high-quality micro optical devices on-chip possible. The method comprises coating metal on film surface, selectively removing the metal film by photolithography (such as femtosecond laser selective ablation, ultraviolet photolithography, electron beam etching, ion beam etching, and reactive ion etching), chemical mechanical polishing, chemical corrosion or over polishing and other steps. Micro-optical devices on-chip prepared by the method have extremely high surface finish and extremely low optical loss. The method is applicable to preparing high-quality micro-optical structures (including but not limited to microdisc cavities, microring cavities, optical waveguides and coupled devices thereof) on various films on-chip (including but not limited to lithium niobate single crystal films, quartz films, silicon films, silicon dioxide films, diamond thin films, etc.).

Classes IPC  ?

  • G02B 6/136 - Circuits optiques intégrés caractérisés par le procédé de fabrication par gravure
  • G03F 7/00 - Production par voie photomécanique, p. ex. photolithographique, de surfaces texturées, p. ex. surfaces impriméesMatériaux à cet effet, p. ex. comportant des photoréservesAppareillages spécialement adaptés à cet effet
  • C23F 1/26 - Compositions acides pour les métaux réfractaires
  • G02B 6/12 - Guides de lumièreDétails de structure de dispositions comprenant des guides de lumière et d'autres éléments optiques, p. ex. des moyens de couplage du type guide d'ondes optiques du genre à circuit intégré

93.

RADIAL SERVO DEVICE FOR SUPER-RESOLUTION OPTICAL DISC AND SERVO CONTROL METHOD THEREFOR

      
Numéro d'application CN2019082921
Numéro de publication 2019/205993
Statut Délivré - en vigueur
Date de dépôt 2019-04-16
Date de publication 2019-10-31
Propriétaire SHANGHAI INSTITUTES OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Ruan, Hao
  • Hu, Qiao
  • Yuan, Xupeng
  • Guo, Xinjun

Abrégé

Disclosed by the present invention are a radial servo device for a super-resolution optical disc and a servo control method therefor, wherein a radial servo control device thereof comprises an excitation light source, a servo light source, an integrated optical path, focusing units, a servo light detecting unit and a drive control unit; the drive control unit presets N detection error reference values with respect to each guide layer trench irradiated by servo light, and controls corresponding positions of the focusing units in N data tracks below each guide layer trench according to a comparison result between a detection result of servo reflected light and the detection error reference values. The present invention is applicable to a variety of super-resolution optical discs on the basis of stimulated radiation loss microscopy technology, a two-photon absorption technology, and the like, and achieves accurate radial servo control of super-resolution data tracks (<100 nm) without reducing the wavelength of servo light and the width of guide layer trenches.

Classes IPC  ?

  • G11B 7/00 - Enregistrement ou reproduction par des moyens optiques, p. ex. enregistrement utilisant un faisceau thermique de rayonnement optique, reproduction utilisant un faisceau optique à puissance réduiteSupports d'enregistrement correspondants

94.

RESISTANCE SPOT WELDING ELECTRODE CAP

      
Numéro d'application CN2018121780
Numéro de publication 2019/196494
Statut Délivré - en vigueur
Date de dépôt 2018-12-18
Date de publication 2019-10-17
Propriétaire SHANGHAI INSTITUTES OF OPTICS AND FINE MECHANICS, CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Yang, Shanglu
  • Wang, Junyan
  • Tao, Wu

Abrégé

Provided is a resistance spot welding electrode cap; a recess (33) is provided at the center of the welding contact interface (3) of the electrode cap; during welding, due to the presence of the recess (33), the area of contact between the electrode cap and a metal workpiece to be soldered is reduced; in the initial stage, the overall heat generation is concentrated on the outer ring of the weld point and heat dissipation becomes slower, helping a weld nugget to form from the outside to the inside; furthermore, due to the presence of the groove (33), the metal workpiece expands toward the groove (33) at the center of the electrode, thereby increasing the size of the weld nugget and reducing splash and deformation; in comparison with conventional electrode caps, the welding current required to form weld points of the same size is lower, saving on electricity costs; furthermore, weld points obtained using the same current have higher strength and stability with fewer welding defects.

Classes IPC  ?

  • B23K 11/30 - Caractéristiques relatives aux électrodes

95.

Method for limiting growth of KDP-type crystals with a long seed

      
Numéro d'application 16218291
Numéro de brevet 10822715
Statut Délivré - en vigueur
Date de dépôt 2018-12-12
Date de la première publication 2019-05-09
Date d'octroi 2020-11-03
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Qi, Hongji
  • Chen, Duanyang
  • Shao, Jianda
  • Xie, Xiaoyi
  • Wang, Bin
  • Wang, Hu

Abrégé

Method for limiting growth of KDP-type crystals with a long seed where an upper and a lower ends of the long seed crystal are respectively limited by an upper baffle plate and a lower tray to restrain growth of a pyramidal surface and allow only four prismatic surfaces in [100] and [010] directions to grow. Finally grown crystal contains no pyramid-prism interface that severely restricts quality of optical element, and all cut optical elements have high optical quality. As four prismatic surfaces are subjected to highly similar growing environment and grow simultaneously, all optical elements cut therefrom have high optical uniformity. Due to uniqueness of a cutting angle of a KDP crystal frequency-tripled element, high cutting efficiency is achieved in the element, and an area of a maximum frequency-tripled element that may be cut is known in advance according to a horizontal size of the grown crystal.

Classes IPC  ?

  • C30B 7/08 - Croissance des monocristaux à partir de solutions en utilisant des solvants liquides à la température ordinaire, p. ex. à partir de solutions aqueuses par refroidissement de la solution
  • C30B 29/60 - Monocristaux ou matériaux polycristallins homogènes de structure déterminée caractérisés par leurs matériaux ou par leur forme caractérisés par la forme
  • C30B 29/14 - Phosphates
  • C30B 29/64 - Cristaux plats, p. ex. plaques, bandes ou pastilles

96.

GRATING WAVEFRONT INCLINED DISPERSION COMPENSATION DEVICE

      
Numéro d'application CN2017106000
Numéro de publication 2019/047330
Statut Délivré - en vigueur
Date de dépôt 2017-10-13
Date de publication 2019-03-14
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Tang, Shunxing
  • Zhu, Baoqiang

Abrégé

A grating wavefront inclined dispersion compensation device, comprising a first blazed grating, an Offner optical system and a second blazed grating or a right-angle reflector. The grating wavefront inclined dispersion compensation device compensates for temporal stretching and spatial stretching caused by a grating angular dispersion effect, and ensures that the time-space dispersion of a light beam is zero when the light beam reaches a working surface. Compared to conventional grating-based wavefront inclination acquisition technology, the present invention fundamentally eliminates the influence of the grating angular dispersion effect on the applied effect of wavefront inclination technology.

Classes IPC  ?

  • G01J 11/00 - Mesure des caractéristiques d'impulsions lumineuses individuelles ou de trains d'impulsions lumineuses
  • G02B 27/42 - Optique de diffraction
  • G02B 27/44 - Systèmes à réseauxRéseaux zonés

97.

MEASUREMENT DEVICE AND METHOD FOR IN-SITU TIME-RESOLVED X-RAY ABSORPTION SPECTRUM

      
Numéro d'application CN2017089248
Numéro de publication 2018/201586
Statut Délivré - en vigueur
Date de dépôt 2017-06-20
Date de publication 2018-11-08
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Shao, Jianda
  • Liu, Shijie
  • Wang, Shenghao

Abrégé

A measurement device and method for an in-situ time-resolved X-ray absorption spectrum. The measurement device mainly comprises an X-ray source (1), a first slit (2), an acousto-optic X-ray filter (9), a radio frequency transmitter (10), a second slit (4), a front ionization chamber (5), a front ionization chamber signal amplifier (11), a sample to be tested (6), a rear ionization chamber (7), a rear ionization chamber signal amplifier (13), a data collector (12), and a computer (14). The X-ray source (1), the acousto-optic X-ray filter (9), and the radio frequency transmitter (10) produce a monochromatic X-ray beam. The front ionization chamber (5) measures the intensity of the X-ray beam before the X-ray beam passes through the sample (6). The rear ionization chamber (7) measures the intensity of the X-ray beam after the X-ray beam passes through the sample (6). The front ionization chamber signal amplifier (11), the rear ionization chamber signal amplifier (13), the data collector (12), and the computer (14) acquire and process data. Mechanical components do not move during device measurement, the device can realize time-resolved measurement of an X-ray absorption spectrum and has high measurement accuracy.

Classes IPC  ?

  • G01N 23/083 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en transmettant la radiation à travers le matériau et mesurant l'absorption le rayonnement consistant en rayons X

98.

GALLIUM OXIDE-DOPED CRYSTALLINE MATERIAL, PREPARATION METHOD AND APPLICATION THEREOF

      
Numéro d'application CN2018074058
Numéro de publication 2018/137673
Statut Délivré - en vigueur
Date de dépôt 2018-01-24
Date de publication 2018-08-02
Propriétaire SHANGHAI INSTITUTE OF OPTICS AND FINE MECHANICS CHINESE ACADEMY OF SCIENCES (Chine)
Inventeur(s)
  • Xia, Changtai
  • Sai, Qinglin
  • Zhou, Wei
  • Qi, Hongji

Abrégé

The invention discloses a VB group element doped with a β-gallium oxide crystalline material, and a preparation method and application thereof. The series doped with the β-Ga2O3 crystalline material is monoclinic, the space group is C2/m, the resistivity is in the range of 2.0×10-4 to 1×104 Ω·cm, and/or the carrier concentration is in the range of 5×1012 to 7×1020 / cm3. The preparation method comprises steps of: mixing M2O5 and Ga2O3 with a purity of 4N or more at a molar ratio of (0.000000001-0.01):(0.999999999-0.99); and then performing crystal growth. The invention can prepare a high-conductivity β-Ga2O3 crystalline material with n-type conductivity characteristics by conventional processes, providing a basis for applications thereof to electrically powered electronic devices, optoelectronic devices, photocatalysts or conductive substrates.

Classes IPC  ?

  • C30B 29/16 - Oxydes
  • C30B 13/00 - Croissance des monocristaux par fusion de zoneAffinage par fusion de zone
  • C30B 15/00 - Croissance des monocristaux par tirage hors d'un bain fondu, p. ex. méthode de Czochralski
  • H01L 31/032 - Matériaux inorganiques comprenant, à part les matériaux de dopage ou autres impuretés, uniquement des composés non couverts par les groupes

99.

Micro-movement subassembly for angle adjustment

      
Numéro d'application 15619360
Numéro de brevet 10289150
Statut Délivré - en vigueur
Date de dépôt 2017-06-09
Date de la première publication 2018-03-29
Date d'octroi 2019-05-14
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Zhu, Jianqiang
  • Tang, Gengxiu
  • Liu, Zhigang

Abrégé

A micro-movement subassembly as a precise driving screw for angle adjustment, comprising a shank, a turnbuckle, and a central cylindrical shaft. The subassembly is precise for linear displacement, good orientation, stable and reliable adjustment, which can be used for a variety of precision-oriented precision micro-angle adjustment of the drive screw.

Classes IPC  ?

  • F16H 3/06 - Transmissions à engrenages pour transmettre un mouvement rotatif à rapport de vitesse variable ou pour inverser le mouvement rotatif sans engrenages à mouvement orbital à vis sans fin et roue à vis sans fin ou bien à engrenages ayant essentiellement une denture hélicoïdale ou à chevrons
  • F16H 27/02 - Mécanismes pas à pas sans organes à roue libre, p. ex. entraînements à croix de Malte dont au moins un organe de transmission est alternatif ou oscillant
  • F16H 29/02 - Transmissions pour transmettre un mouvement rotatif par des organes d'entraînement intermittent, p. ex. avec action de roue libre entre un des arbres d'une part et un organe intermédiaire oscillant ou alternatif d'autre part qui ne tourne pas avec l'un ou l'autre de ces arbres
  • F16H 29/20 - Transmissions pour transmettre un mouvement rotatif par des organes d'entraînement intermittent, p. ex. avec action de roue libre les organes à fonctionnement intermittent ayant la forme de vis sans fin, de vis ou de crémaillères
  • G05G 23/00 - Moyens d'assurer la mise en position correcte de certaines pièces des mécanismes de commande, p. ex. rattrapage du jeu
  • F16H 25/20 - Mécanismes à vis
  • G05G 1/08 - Organes de commande actionnés à la main par un mouvement de rotation, p. ex. volants

100.

Method and apparatus for realizing tubular optical waveguides in glass by femtosecond laser direct writing

      
Numéro d'application 15096066
Numéro de brevet 10201874
Statut Délivré - en vigueur
Date de dépôt 2016-04-11
Date de la première publication 2017-08-03
Date d'octroi 2019-02-12
Propriétaire Shanghai Institute of Optics And Fine Mechanics, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Cheng, Ya
  • Liao, Yang
  • Chu, Wei
  • Wang, Peng
  • Qi, Jia

Abrégé

Apparatus and method for realizing tubular optical waveguides in glass by femtosecond laser direct writing. Irradiation in glass with focused femtosecond laser pulses leads to decrease of refractive index in the modified region. Tubular optical waveguides of variable mode areas are fabricated by forming the four sides of the modified regions with slit-shaped femtosecond laser pulses, ensuring single mode waveguide with a mode field dimension compatible with direct coupling to single-mode optical fibers.

Classes IPC  ?

  • B23K 26/0622 - Mise en forme du faisceau laser, p. ex. à l’aide de masques ou de foyers multiples par commande directe du faisceau laser par impulsions de mise en forme
  • B23K 26/53 - Travail par transmission du faisceau laser à travers ou dans la pièce à travailler pour modifier ou reformer le matériau dans la pièce à travailler, p. ex. pour faire des fissures d'amorce de rupture
  • B23K 26/06 - Mise en forme du faisceau laser, p. ex. à l’aide de masques ou de foyers multiples
  • B23K 26/00 - Travail par rayon laser, p. ex. soudage, découpage ou perçage
  • G02B 6/13 - Circuits optiques intégrés caractérisés par le procédé de fabrication
  • C03C 23/00 - Autres traitements de surface du verre, autre que sous forme de fibres ou de filaments
  • G02B 6/00 - Guides de lumièreDétails de structure de dispositions comprenant des guides de lumière et d'autres éléments optiques, p. ex. des moyens de couplage
  • B23K 103/00 - Matières à braser, souder ou découper
  1     2        Prochaine page