A Robust Optimization Approach for Magnetic Spacecraft Attitude Stabilization

被引:0
|
作者
Renato Bruni
Fabio Celani
机构
[1] Sapienza University of Rome,Department of Computer Control and Management Engineering “Antonio Ruberti”
[2] Sapienza University of Rome,School of Aerospace Engineering
关键词
Derivative-free optimization; Spacecraft attitude control; Robust optimization; Min–max problems; Magnetic actuators; 90C26; 90C90; 93D15;
D O I
暂无
中图分类号
学科分类号
摘要
Attitude stabilization of spacecraft using magnetorquers can be achieved by a proportional–derivative-like control algorithm. The gains of this algorithm are usually determined by using a trial-and-error approach within the large search space of the possible values of the gains. However, when finding the gains in this manner, only a small portion of the search space is actually explored. We propose here an innovative and systematic approach for finding the gains: they should be those that minimize the settling time of the attitude error. However, the settling time depends also on initial conditions. Consequently, gains that minimize the settling time for specific initial conditions cannot guarantee the minimum settling time under different initial conditions. Initial conditions are not known in advance. We overcome this obstacle by formulating a min–max problem whose solution provides robust gains, which are gains that minimize the settling time under the worst initial conditions, thus producing good average behavior. An additional difficulty is that the settling time cannot be expressed in analytical form as a function of gains and initial conditions. Hence, our approach uses some derivative-free optimization algorithms as building blocks. These algorithms work without the need to write the objective function analytically: they only need to compute it at a number of points. Results obtained in a case study are very promising.
引用
收藏
页码:994 / 1012
页数:18
相关论文
共 50 条
  • [1] A Robust Optimization Approach for Magnetic Spacecraft Attitude Stabilization
    Bruni, Renato
    Celani, Fabio
    [J]. JOURNAL OF OPTIMIZATION THEORY AND APPLICATIONS, 2017, 173 (03) : 994 - 1012
  • [2] Magnetic spacecraft attitude stabilization with two torquers
    Alger, Mike
    de Ruiter, Anton
    [J]. ACTA ASTRONAUTICA, 2022, 192 : 157 - 167
  • [3] Robust attitude stabilization of spacecraft subject to actuator failures
    Godard
    Kumar, Krishna Dev
    [J]. ACTA ASTRONAUTICA, 2011, 68 (7-8) : 1242 - 1259
  • [4] Robust and optimal attitude stabilization of spacecraft with external disturbances
    Park, Y
    [J]. AEROSPACE SCIENCE AND TECHNOLOGY, 2005, 9 (03) : 253 - 259
  • [5] Robust attitude control of spacecraft with magnetic actuators
    Calloni, Alberto
    Corti, Andrea
    Zanchettin, Andrea Maria
    Lovera, Marco
    [J]. 2012 AMERICAN CONTROL CONFERENCE (ACC), 2012, : 750 - 755
  • [6] ROBUST ATTITUDE STABILIZATION OF SPACECRAFT USING NONLINEAR QUATERNION FEEDBACK
    JOSHI, SM
    KELKAR, AG
    WEN, JTY
    [J]. IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 1995, 40 (10) : 1800 - 1803
  • [7] Robust attitude stabilization of spacecraft using minimal kinematic parameters
    Park, Y
    Tahk, MJ
    [J]. 2001 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION, VOLS I-IV, PROCEEDINGS, 2001, : 1621 - 1626
  • [8] Robust H∞ output feedback control for attitude stabilization of a flexible spacecraft
    Wu, Shunan
    Wen, Shenghui
    [J]. NONLINEAR DYNAMICS, 2016, 84 (01) : 405 - 412
  • [9] Rigid spacecraft robust optimal attitude stabilization under actuator misalignments
    Wang, Zhong
    Li, Yan
    [J]. AEROSPACE SCIENCE AND TECHNOLOGY, 2020, 105
  • [10] Large Spacecraft Attitude Control by Robust Adaptive Approach
    Tsuda, Shinichi
    Sakano, Koichi
    [J]. IAENG TRANSACTIONS ON ENGINEERING TECHNOLOGIES VOL 1, 2009, 1089 : 1 - +