Fiber Optical Cable and Connector System (FOCCoS) for PFS/Subaru

被引:6
|
作者
de Oliveira, Antonio Cesar [1 ]
de Oliveira, Ligia Souza [2 ]
de Arruda, Marcio V. [1 ]
Marrara, Lucas Souza [2 ]
dos Santos, Leandro H. [1 ]
Ferreira, Decio [1 ]
dos Santos, Jesulino B. [1 ]
Rosa, Josimar A. [1 ]
Junior, Orlando V. [1 ]
Pereira, Jeferson M. [1 ]
Castilhol, Bruno [1 ]
Gneiding, Clemens [1 ]
Junior, Laerte S. [3 ]
de Oliveira, Claudia M. [3 ]
Gunn, James E. [4 ]
Ueda, Akitoshi [5 ]
Takato, Naruhisa [5 ]
Shimono, Atsushi [6 ]
Sugai, Hajime [6 ]
Karoji, Hiroshi [6 ]
Kimura, Masahiko [6 ]
Tamura, Naoyuki [6 ]
Wang, Shiang-Yu [7 ]
Murray, Graham [8 ]
Le Mignant, David [9 ]
Madec, Fabrice [9 ]
Jaquet, Marc [9 ]
Vives, Sebastien [9 ]
Fisher, Charlie [10 ]
Braunm, David [10 ]
Schwochertm, Mark [10 ]
Reiley, Daniel J. [11 ]
机构
[1] MCT LNA, Itajuba, MG, Brazil
[2] OIO Oliveira Instrumentacao Opt Ltda, Sao Paulo, SP, Brazil
[3] Univ Sao Paulo, IAG, Inst Astron Geofis & Ciencias Atmosfer, BR-05508 Sao Paulo, SP, Brazil
[4] Princeton Univ, Dept Astrophys Sci, Princeton, NJ 08544 USA
[5] Natl Astron Observ Japan, Subaru Telescope, Mitaka, Tokyo, Japan
[6] Univ Tokyo, Kav li Inst Phys & Math Univ WPI, Tokyo 1138654, Japan
[7] Acad Sinica, Inst Astron & Astrophys, Taipei 115, Taiwan
[8] Univ Durham, Ctr Adv Instrumentat, Durham, England
[9] Observ Astron Marseille Provence, Lab Astrophys Marseille, Marseille, France
[10] Jet Prop Lab, Pasadena, CA USA
[11] CALTECH, Opt Observ, Pasadena, CA 91125 USA
关键词
Spectrograph; Optical Fibers; Multi-fibers connector;
D O I
10.1117/12.2056888
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
FOCCoS, "Fiber Optical Cable and Connector System" has the main function of capturing the direct light from the focal plane of Subaru Telescope using optical fibers, each one with a microlens in its tip, and conducting this light through a route containing connectors to a set of four spectrographs. The optical fiber cable is divided in 3 different segments called Cable A, Cable B and Cable C. Multi-fibers connectors assure precise connection among all optical fibers of the segments, providing flexibility for instrument changes. To assure strong and accurate connection, these sets are arranged inside two types of assemblies: the Tower Connector, for connection between Cable C and Cable B; and the Gang Connector, for connection between Cable B and Cable A. Throughput tests were made to evaluate the efficiency of the connections. A lifetime test connection is in progress. Cable C is installed inside the PFI, Prime Focus Instrument, where each fiber tip with a microlens is bonded to the end of the shaft of a 2-stage piezo-electric rotatory motor positioner; this assembly allows each fiber to be placed anywhere within its patrol region, which is 9.5mm diameter.. Each positioner uses a fiber arm to support the ferrule, the microlens, and the optical fiber. 2400 of these assemblies are arranged on a motor bench plate in a hexagonal-closed-packed disposition. All optical fibers from Cable C, protected by tubes, pass through the motors' bench plate, three modular plates and a strain relief box, terminating at the Tower Connector. Cable B is permanently installed at Subaru Telescope structure, as a link between Cable C and Cable A. This cable B starts at the Tower Connector device, placed on a lateral structure of the telescope, and terminates at the Gang Connector device. Cable B will be routed to minimize the compression, torsion and bending caused by the cable weight and telescope motion. In the spectrograph room, Cable A starts at the Gang Connector, crosses a distribution box and terminates in a slit device. Each slit device receives approximately 600 optical fibers, linearly arrayed in a curve for better orientation of the light to the spectrograph collimator mirror. Four sets of Gang Connectors, distribution boxes and Slit devices complete one Cable A. This paper will review the general design of the FOCCoS subsystem, methods used to manufacture the involved devices, and the needed tests results to evaluate the total efficiency of the set.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] OPTICAL FIBER CONNECTOR IN A DELIVERY SYSTEM FOR MEDICAL APPLICATIONS
    BRENCI, M
    FALCIAI, R
    RUSSO, V
    SCHEGGI, A
    ALTA FREQUENZA, 1981, 50 (04): : 223 - 225
  • [22] STRUCTURAL DESIGN OF OPTICAL-FIBER FANOUT CONNECTOR FOR FIBER-RIBBON CABLE TERMINATION.
    Nagasawa, Shinji
    Kashima, Norio
    Transactions of the Institute of Electronics, Information and Communication Engineers, Section E (, 1987, E70 (04): : 276 - 277
  • [23] Simulation of the fiber optic connector alignment system for cable links subjected to vibrations
    Andreev, Vladimir A.
    Bourdine, Anton V.
    Zhukov, Alexander E.
    Praporshchikov, Denis E.
    OPTICAL TECHNOLOGIES FOR TELECOMMUNICATIONS 2012, 2013, 8787
  • [24] An optical fiber cable system for HDTV cameras
    Narimatsu, Takashi
    Sekiguchi, Tatsuo
    Sekino, Hiroyuki
    Furukawa Review, 2004, (25): : 24 - 27
  • [25] OPTICAL FIBER INDOOR CONNECTOR
    MALSOT, C
    BOUYGUES, J
    ONDE ELECTRIQUE, 1979, 59 (02): : 56 - 58
  • [26] SUBMARINE OPTICAL FIBER CABLE SYSTEM APPLICATIONS
    FOX, S
    BEDFORD, IFAG
    JOURNAL OF THE INSTITUTION OF ELECTRONIC AND RADIO ENGINEERS, 1988, 58 (05): : S123 - S130
  • [27] A NEW PLANNING SYSTEM FOR OPTICAL FIBER CABLE
    WATANABE, T
    JAPAN TELECOMMUNICATIONS REVIEW, 1988, 30 (01): : 29 - 37
  • [28] OPTICAL-FIBER CONNECTOR
    DALGLEISH, JF
    LUKAS, HH
    ELECTRONICS LETTERS, 1975, 11 (01) : 24 - 26
  • [29] Optical Fiber Connector Technology
    Nagase, Ryo
    IEICE TRANSACTIONS ON COMMUNICATIONS, 2023, E106B (11) : 1044 - 1049
  • [30] Optical connector technologies for optical fiber network
    Abe, Yoshiteru
    Journal of the Institute of Electronics, Information and Communication Engineers, 2015, 98 (09): : 818 - 822