The Giant Magellan Telescope Phasing System

被引:8
|
作者
Bouchez, Antonin H. [1 ]
McLeod, Brian A. [1 ]
Acton, D. Scott [1 ]
Kanneganti, Srikrishna [1 ]
Kibblewhite, Edward J. [1 ]
Shectman, Stephen A. [1 ]
van Dam, Marcos A. [1 ]
机构
[1] GMTO Corp, 251 S Lake Ave, Pasadena, CA 91101 USA
来源
ADAPTIVE OPTICS SYSTEMS III | 2012年 / 8447卷
基金
美国国家科学基金会;
关键词
Extremely Large Telescopes; Adaptive Optics; Wavefront Sensing; Metrology; MIRROR SEGMENTS; KECK TELESCOPES; ALGORITHM;
D O I
10.1117/12.927163
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The 25 m Giant Magellan Telescope consists of seven circular 8.4 m primary mirror segments with matching segmentation of the Gregorian secondary mirror. Achieving the diffraction limit in the adaptive optics observing modes will require equalizing the optical path between pairs of segments to a small fraction of the observing wavelength. This is complicated by the fact that primary mirror segments are separated by up to 40 cm, and composed of borosilicate glass. The phasing system therefore includes both edge sensors to sense high-frequency disturbances, and wavefront sensors to measure their long-term drift and sense atmosphere-induced segment piston errors. The major subsystems include a laser metrology system monitoring the primary mirror segments, capacitive edge sensors between secondary mirror segments, a phasing camera with a wide capture range, and an additional sensitive optical piston sensor incorporated into each AO instrument. We describe in this paper the overall phasing strategy, controls scheme, and the expected performance of the system with respect to the overall adaptive optics error budget. Further details may be found in specific papers on each of the subsystems.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Science Instruments for the Giant Magellan Telescope
    Millan-Gabet, R.
    Rahmer, G.
    Bernstein, R. A.
    Souza, A.
    Schoenell, W.
    Demers, R.
    Szentgyorgyi, A.
    Fabricant, D.
    Ribeiro, R.
    Sharp, R.
    Jaffe, D. T.
    Lee, S.
    Lawrence, J.
    Crane, J.
    Males, J.
    Nemati, B.
    GROUND-BASED AND AIRBORNE INSTRUMENTATION FOR ASTRONOMY X, 2024, 13096
  • [22] Systems Engineering for the Giant Magellan Telescope
    Angeli, George Z.
    Bernstein, Rebecca
    Walls, Brian
    Bouchez, Antonin
    Conan, Rodolphe
    Irarrazaval, Benjamin
    Sitarski, Breann
    MODELING, SYSTEMS ENGINEERING, AND PROJECT MANAGEMENT FOR ASTRONOMY VIII, 2018, 10705
  • [23] Telescope pier seismic isolation for the Giant Magellan telescope
    Manuel, Eric A.
    Constantinou, Michael C.
    Grigel, Eric
    Bigelow, Bruce C.
    Teran, Jose
    Talison, Bahram
    GROUND-BASED AND AIRBORNE TELESCOPES VII, 2018, 10700
  • [24] Cash boost for Giant Magellan Telescope
    Kruesi, Liz
    1600, IOP Publishing Ltd (33):
  • [25] Construction starts on Giant Magellan Telescope
    Williams, Andrew
    PHYSICS WORLD, 2015, 28 (07) : 8 - 8
  • [26] The Giant Magellan Telescope (GMT) structure
    Gunnels, S
    Davison, W
    Cuerden, B
    Hertz, E
    ASTRONOMICAL STRUCTURES AND MECHANISMS TECHNOLOGY, 2004, 5495 : 168 - 179
  • [27] Wind responses of Giant Magellan telescope
    Irarrazaval, Benjamin
    Buleri, Christine
    Johns, Matt
    MODELING, SYSTEMS ENGINEERING, AND PROJECT MANAGEMENT FOR ASTRONOMY VI, 2014, 9150
  • [28] Exoplanet imaging with the Giant Magellan Telescope
    Angel, Roger
    Codona, Johanan L.
    Hinz, Phil
    Close, Laird
    GROUND-BASED AND AIRBORNE TELESCOPES, PTS 1 AND 2, 2006, 6267
  • [29] Exoplanet imaging with the Giant Magellan Telescope
    Codona, JL
    ADVANCEMENTS IN ADAPTIVE OPTICS, PTS 1-3, 2004, 5490 : 379 - 388
  • [30] Cash boost for Giant Magellan Telescope
    Kruesi, Liz
    PHYSICS WORLD, 2020, 33 (10) : 14 - 14