反力轮对地静止卫星姿态控制LQG/LTR控制器设计

A. Kosari, M. Peyrovani, M. Fakoor, H. N. Pishkenari
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引用次数: 4

摘要

本文设计了LQG/LTR控制器,用于对地静止卫星标称模式的姿态控制。使用执行机构是反作用轮,控制扭矩由LQR调节器决定。如果在反馈中考虑所有状态,LQR控制器信号具有良好的性能,但不包含模型和传感器噪声。使用的传感器是太阳和地球传感器,使用EKF估计噪声状态。然后,基于估计状态设计LQG和LQG/LTR控制器,并与LQR控制器进行比较。结果表明,LQG/LTR的鲁棒性和性能优于LQG,控制超调量小于LQR。设计中提供的术语是避免执行器饱和。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of LQG/LTR Controller for Attitude Control of Geostationary Satellite Using Reaction Wheels
In this paper, LQG/LTR controller is designed for attitude control of the geostationary satellite at nominal mode. Usage actuator is the reaction wheel and control torque is determined by the LQR regulator. LQR controller signal has good performance, if all states are considered in feedback, but does not include model and sensors noises. Usage sensors are sun and earth sensors and EKF is used for estimation of noisy states. Then, LQG and LQG/LTR controllers are designed based on the estimated states, and are compared with LQR controller. The results show that robustness and performance of LQG/LTR are better than LQG and its control overshoot is smaller than LQR. The term that is provided in designs, is avoiding of saturation of actuator.
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