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Time Optimal Attitude Maneuver Strategies for the Agile Spacecraft with Reaction Wheels and Thrusters

机译:带有反作用轮和推进器的敏捷航天器的时间最优姿态机动策略

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摘要

Reaction wheels and thrusters are commonly used for the satellite attitude control. Since satellites frequently need fast maneuvers, the minimum time maneuvers have been extensively studied. When the speed of attitude maneuver is restricted due to the wheel torque capacity of low level, the combinational use of wheel and thruster is considered. In this paper, minimum time optimal control performances with reaction wheels and thrusters are studied. We first identify the features of the maneuvers of the satellite with reaction wheels only. It is shown that the time-optimal maneuver for the satellite with four reaction wheels in a pyramid configuration occurs on the fashion of single axis rotation. Pseudo control logic for reaction wheels is successfully adopted for smooth and chattering-free time-optimal maneuvers. Secondly, two different thrusting logics for satellite time-optimal attitude maneuver are compared with each other: constant time-sharing thrusting logic and varying time-sharing thrusting logic. The newly suggested varying time-sharing thrusting logic is found to reduce the maneuvering time dramatically, Finally, the hybrid control with reaction wheels and thrusters are considered. The simulation results show that the simultaneous actuation of reaction wheels and thrusters with varying time-sharing logic reduces the maneuvering time enormously. Spacecraft model is KOrea Multi-Purpose SATellite (KOMPSAT) -2 which is being developed in Korea as an agile maneuvering satellite.
机译:反作用轮和推进器通常用于卫星姿态控制。由于卫星经常需要快速机动,因此已经对最小时间机动进行了广泛的研究。当由于低水平的车轮扭矩能力而限制了姿态操纵的速度时,可以考虑车轮和推进器的组合使用。本文研究了反作用轮和推进器的最小时间最优控制性能。我们首先确定仅具有反作用轮的卫星操纵的特征。结果表明,具有四个反作用轮的卫星以金字塔结构的时间最优操纵是以单轴旋转的方式发生的。反作用轮的伪控制逻辑被成功采用,以实现平稳,无抖动的时间最优操纵。其次,比较了两种不同的卫星时间最优姿态操纵推力逻辑:恒时分时推力逻辑和变时时分推力逻辑。发现了新提出的可变分时推力逻辑,可以显着减少操纵时间。最后,考虑了带有反作用轮和推进器的混合控制。仿真结果表明,具有不同分时逻辑的反作用轮和推进器的同时致动极大地减少了操纵时间。航天器模型是韩国多用途卫星(KOMPSAT)-2,它是在韩国开发的敏捷机动卫星。

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