NGWS-P: the Natural Guide star Wavefront Sensor Prototype of GMT single conjugate AO system NGAO

被引:1
作者
Plantet, Cedric [1 ]
Cheffot, Anne-Laure [1 ]
Pinna, Enrico [1 ]
Esposito, Simone [1 ]
Azzaroli, Nicole [1 ]
Rossi, Fabio [1 ]
Bonaglia, Marco [1 ]
Lapucci, Tommaso [1 ]
Carbonaro, Luca [1 ]
Quiros-Pacheco, Fernando [2 ]
Sitarski, Breann [2 ]
Schurter, Patricio [2 ]
Van Dam, Marcos [3 ]
Bouchez, Antonin [2 ]
Demers, Richard [2 ]
机构
[1] INAF Osservatorio Astrofis Arcetri, Largo Enrico Fermi 5, I-50125 Florence, Italy
[2] GMTO Corp, 465 N Halstead St,Suite 250, Pasadena, CA 91107 USA
[3] Flat Wavefronts, 21 Lascelles St, Christchurch 8022, New Zealand
来源
ADAPTIVE OPTICS SYSTEMS VIII | 2022年 / 12185卷
基金
美国国家科学基金会;
关键词
Adaptive Optics; Telescope phasing; Wavefront sensing; Extremely Large Telescope;
D O I
10.1117/12.2630864
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The Giant Magellan Telescope (GMT) Adaptive Optics (AO) systems feature a single conjugate natural guide star based AO system using the 7 deformable secondaries and a post focal wavefront sensor named NGWS (Natural Guide star Wavefront Sensor). The NGWS has two different channels: one featuring a high spatial sampling pyramid sensor dedicated to the fast frame rate correction of atmospheric turbulence and a second dedicated to the correct phasing of the 7 segments of the GMT telescope. The Arcetri AO group in collaboration with the GMT Organization (GMTO) and the University of Arizona (UA) is in charge of providing the design, fabrication and test of a prototype of the NGWS system that shall replicate all aspects of optical sensitivity including optical design, camera selection and data reduction. The prototype design starts from the baseline design for the NGWS that was provided by the Arcetri group in 2013. The prototype project Kick-off Meeting was held on April 16th 2021 and is foreseen to reach completion 34 months later. A first set of performance tests will be performed locally in Arcetri and the final prototype performance verification will happen at UA laboratories after installation of the unit on the High Contrast AO test bench developed by the AO group of UA. This final verification is scheduled for the summer of 2023. The paper reports about the prototype development work summarizing results of numerical simulation that lead to the chosen opto-mechanical design, main features and challenges of optical design for the two sensing channels.
引用
收藏
页数:18
相关论文
共 13 条
  • [1] An Overview and Status of GMT Active and Adaptive Optics
    Bouchez, Antonin H.
    Angeli, George Z.
    Ashby, David S.
    Bernier, Robert
    Conan, Rodolphe
    McLeod, Brian A.
    Quiros-Pacheco, Fernando
    van Dam, Marcos A.
    [J]. ADAPTIVE OPTICS SYSTEMS VI, 2018, 10703
  • [2] Cheffot L., 2022, PROC SPIE
  • [3] Haffert S. Y., 2022, Journal of Astronomical Telescopes, Instruments, and Systems, V8, P1
  • [4] The Giant Magellan Telescope high contrast phasing testbed
    Hedglen, Alexander D.
    Close, Laird M.
    Bouchez, Antonin H.
    Males, Jared R.
    Demers, Richard
    Kautz, Maggie
    Basant, Ritvik
    Parkinson, Makayla
    Gasho, Victor
    Quiros-Pacheco, Fernando
    Sitarski, Breann N.
    [J]. ADAPTIVE OPTICS SYSTEMS VII, 2020, 11448
  • [5] Males J. R., 2018, ADAPTIVE OPTICS SYST, VVI, P76
  • [6] LIFT: a focal-plane wavefront sensor for real-time low-order sensing on faint sources
    Meimon, Serge
    Fusco, Thierry
    Mugnier, Laurent M.
    [J]. OPTICS LETTERS, 2010, 35 (18) : 3036 - 3038
  • [7] A stellar spectral flux library:: 1150-25000Å
    Pickles, AJ
    [J]. PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF THE PACIFIC, 1998, 110 (749) : 863 - 878
  • [8] Pinna E., 2014, ADAPTIVE OPTICS SYST, V9148, P898
  • [9] Revisiting the comparison between the Shack-Hartmann and the pyramid wavefront sensors via the Fisher information matrix
    Plantet, C.
    Meimon, S.
    Conan, J. -M.
    Fusco, T.
    [J]. OPTICS EXPRESS, 2015, 23 (22): : 28619 - 28633
  • [10] Quiros-Pacheco F., 2022, PROC SPIE