Observational impact of scattered light from the laser beam of a laser guide star adaptive optics system

被引:7
|
作者
Hayano, Y [1 ]
Iye, M
Takami, H
Takato, N
Gaessler, W
Minowa, Y
Wizinowich, P
Summers, D
机构
[1] Natl Astron Observ Japan, Tokyo 1818588, Japan
[2] Natl Astron Observ Japan, Subaru Telescope, Hilo, HI 96720 USA
[3] Max Planck Inst Astron, D-69117 Heidelberg, Germany
[4] Univ Tokyo, Sch Sci, Dept Astron, Bunkyo Ku, Tokyo 1130033, Japan
[5] Keck Observ, Kamuela, HI 96743 USA
关键词
D O I
10.1086/379811
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The scattered light from the sodium laser beam projected from the Keck II telescope during their laser guide star experiment campaign conducted at the end of 2001 was measured using the Subaru Telescope, 221 m away from the Keck II telescope. The purpose of our measurement was to evaluate the observational impact of the scattered light from the laser beam on other telescopes whose field of view happens to cross the laser beam. The actual flux level at the wavelength of 589 nm (sodium D2 line) measured when the Subaru Telescope was pointing toward the Keck II laser beam at elevation angles of 45degrees and 60degrees was roughly equivalent to 19.5 mag arcsec(-2) calibrated by a standard-star magnitude in the R band. The present measurements provide the first quantitative assessment of the level of scattered light from the laser beam observed from other nearby telescopes. The results of measurements were shown to be consistent with theoretical estimation based on the laser beam flux and the efficiency of the scattering due to molecules and aerosols in the atmosphere. Although the impact of this scattered light depends on the type of observation, we show that the surface brightness of the sodium laser beam at the focal plane of the telescope is no brighter than the sky background 45degrees away from the full moon, when the collision of the laser beam and telescope pointing takes place at relatively low altitude, for instance several hundred meters above the ground. In this case, many observations could be performed without significant deterioration. Disturbance to astronomical observations could be significant, however, when a nearby telescope is pointed in the vicinity of the laser guide star, because of the presence of the defocused laser guide star itself at around 10 mag in the observing field of view, or because of the increase of total flux of scattered light from the laser beam that occurs when the optical axis of the telescope and the center of the laser beam collide at an altitude of around 8 km.
引用
收藏
页码:1419 / 1428
页数:10
相关论文
共 50 条
  • [21] Implementation of a laser traffic control system supporting laser guide star adaptive optics on Mauna Kea
    Summers, D
    Gregory, B
    Stomski, P
    Brighton, A
    Wainscoat, R
    Wizinowich, P
    Gaessler, W
    Sebag, J
    Boyer, C
    Vermeulen, T
    Denault, T
    Simons, D
    Takami, H
    Veillet, C
    ADAPTIVE OPTICAL SYSTEM TECHNOLOGIES II, PTS 1 AND 2, 2003, 4839 : 440 - 451
  • [22] Progress of the Laser Guide Star Adaptive Optics at Subaru Telescope
    Hayano, Yutaka
    EXOPLANETS AND DISKS: THEIR FORMATION AND DIVERSITY, 2009, 1158 : 385 - 386
  • [23] Atmospheric sodium monitor for Laser Guide Star Adaptive Optics
    Ageorges, N
    Hubin, N
    ASTRONOMY & ASTROPHYSICS SUPPLEMENT SERIES, 2000, 144 (03): : 533 - 540
  • [24] Observing techniques for astronomical laser guide star adaptive optics
    Max, CE
    Macintosh, B
    Olivier, SS
    Gavel, DT
    Friedman, HW
    ADAPTIVE OPTICAL SYSTEM TECHNOLOGIES, PARTS 1 AND 2, 1998, 3353 : 277 - 281
  • [25] Absolute Instruments as Laser Guide Star Adaptive Optics relays
    Rakich, A.
    ADAPTIVE OPTICS SYSTEMS VIII, 2022, 12185
  • [26] Design of the Subaru laser guide star adaptive optics module
    Watanabe, M
    Takami, H
    Takato, N
    Colley, S
    Eldred, M
    Kane, T
    Guyon, O
    Hattori, M
    Goto, M
    Iye, M
    Hayano, Y
    Kamata, Y
    Arimoto, N
    Kobayashi, N
    Minowa, Y
    ADVANCEMENTS IN ADAPTIVE OPTICS, PTS 1-3, 2004, 5490 : 1096 - 1104
  • [27] Progress in Laser Guide Star Adaptive Optics and Lessons Learned
    Wizinowich, Peter
    ADAPTIVE OPTICS SYSTEMS III, 2012, 8447
  • [28] Supernovae and extragalactic astronomy with laser guide star adaptive optics
    Ryder, Stuart D.
    Mattila, Seppo
    Kankare, Erkki
    Vaeisaenen, Petri
    ADAPTIVE OPTICS SYSTEMS IV, 2014, 9148
  • [29] LASER GUIDE STAR IN ADAPTIVE OPTICS - THE TILT DETERMINATION PROBLEM
    RIGAUT, F
    GENDRON, E
    ASTRONOMY & ASTROPHYSICS, 1992, 261 (02) : 677 - 684
  • [30] First light for the sodium laser guide star adaptive optics system on the Lijiang 1.8m telescope
    Kai Wei
    Min Li
    Shan-Qiu Chen
    Yong Bo
    Feng Chen
    Jun-Wei Zuo
    Qi Bian
    Ji Yao
    Lu-Chun Zhou
    Lin Wei
    Dong-Hong Chen
    Yang Gao
    Kai Jin
    Xiao-Lin Dai
    Han-Chu Fu
    Chang Xu
    Zhi-Chao Wang
    Xiang-Hui Xue
    Xue-Wu Chen
    Xian-Mei Qian
    Yu Zhou
    Hao Xian
    Qin-Jun Peng
    Chang-Hui Rao
    Zu-Yan Xu
    Yu-Dong Zhang
    ResearchinAstronomyandAstrophysics, 2016, 16 (12) : 43 - 47