Precision attitude control of the Gravity Probe B satellite

被引:13
|
作者
Conklin, J. W. [1 ]
Adams, M. [2 ]
Bencze, W. J. [2 ]
DeBra, D. B. [2 ]
Green, G. [2 ]
Herman, L. [2 ]
Holmes, T. [2 ]
Muhlfelder, B. [2 ]
Parkinson, B. W. [2 ]
Silbergleit, A. S. [2 ]
Kirschenbaum, J. [3 ]
机构
[1] Univ Florida, Mech & Aerosp Engn, Gainesville, FL 32611 USA
[2] Stanford Univ, Stanford, CA 94305 USA
[3] Lockheed Martin Space Syst Co, Sunnyvale, CA 94089 USA
关键词
spacecraft attitude control; GP-B; tests of general relativity;
D O I
10.1088/0264-9381/32/22/224015
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The Gravity Probe B satellite used ultra-precise gyroscopes in low Earth orbit to compare the orientation of the local inertial reference frame with that of distant space in order to test predictions of general relativity. The experiment required that the Gravity Probe B spacecraft have milliarcsecond-level attitude knowledge for the science measurement, and milliarcsecond-level control to minimize classical torques acting on the science gyroscopes. The primary sensor was a custom Cassegrainian telescope, which measured the pitch and yaw angles of the experiment package with respect to a guide star. The spacecraft rolled uniformly about the direction to the guide star, and the roll angle was measured by star trackers. Attitude control was performed with sixteen proportional thrusters that used boil-off from the experiment's liquid Helium cryogen as propellant. This paper summarizes the attitude control system's design and on-orbit performance.
引用
收藏
页数:25
相关论文
共 50 条
  • [21] INFLUENCE OF GRAVITY ON SATELLITE SPIN AXIS ATTITUDE
    GRASSHOFF, LH
    ARS JOURNAL, 1960, 30 (12): : 1174 - 1175
  • [22] Precision attitude determination for GOES N satellite
    Wu, YWA
    Li, RSK
    Robertson, AD
    GUIDANCE AND CONTROL 2003, 2003, 113 : 21 - 38
  • [23] CHARGE MEASUREMENT AND CONTROL FOR THE GRAVITY-PROBE-B GYROSCOPES
    BUCHMAN, S
    QUINN, T
    KEISER, GM
    GILL, D
    SUMNER, TJ
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1995, 66 (01): : 120 - 129
  • [24] Gyroscopes and charge control for the Relativity Mission Gravity Probe B
    Buchman, S
    Everitt, CWF
    Parkinson, B
    Turneaure, JP
    Brumley, R
    Gill, D
    Keiser, GM
    Xiao, Y
    FUNDAMENTAL PHYSICS IN SPACE, 2000, 25 (06): : 1181 - 1184
  • [25] Attitude Control of Bias Momentum Micro Satellite Using Magnetic and Gravity Gradient Torque
    Mukhayadi, M.
    Madina, Rosza
    Renner, Udo
    2014 IEEE INTERNATIONAL CONFERENCE ON AEROSPACE ELECTRONICS AND REMOTE SENSING TECHNOLOGY (ICARES), 2014, : 132 - 136
  • [26] A Three body Close tracking Architecture for Attitude and Drag free Control of Gravity Satellite
    Liao H.
    Zheng D.
    Zhao Y.
    Zhu Z.
    Xie J.
    Yuhang Xuebao/Journal of Astronautics, 2022, 43 (11): : 1499 - 1510
  • [27] Satellite-to-satellite attitude control of a long-distance spacecraft formation for the Next Generation Gravity Mission
    Canuto, Enrico
    Colangelo, Luigi
    Lotufo, Mauricio
    Dionisio, Sabrina
    EUROPEAN JOURNAL OF CONTROL, 2015, 25 : 1 - 16
  • [28] Gravity-gradient attitude control systems for a satellite on a high-elliptical orbits
    Ovchinnikov, M
    Dyachenko, A
    2ND INTERNATIONAL CONFERENCE ON SATELLITE COMMUNICATIONS - PROCEEDINGS OF ICSC '96, VOLS 1-4, 1996, : E87 - E93
  • [29] MAGNETIC CONTROL OF SATELLITE ATTITUDE
    LYNN, GE
    HURT, JG
    HARRIGER, KA
    IEEE TRANSACTIONS ON COMMUNICATION AND ELECTRONICS, 1964, 83 (74): : 570 - &
  • [30] CONTROL OF THE ATTITUDE OF A RIGID SATELLITE
    BONNARD, B
    RAIRO-AUTOMATIQUE-SYSTEMS ANALYSIS AND CONTROL, 1982, 16 (01): : 85 - 93