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Vibration control of space solar power station in complex environments using giant magnetostrictive actuator

机译:巨型磁致伸缩执行器复杂环境中太阳能发电站的振动控制

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摘要

In this study, a new method of using giant magnetostrictive actuator (GMA) to control the structural vibration of a space solar power station (SSPS) in orbit is proposed. The coupling dynamic model of SSPS, which is simplified into an Euler-Bernoulli beam with both free ends, is established in a Hamilton system. A GMA, which has a large strain coefficient, fast response, and strong stability, is coupled to the surface of an SSPS for vibration control. This work particularly considers the coupling effect of vibration-attitude and the complex space environments, such as sunlight pressure and thermal shock, to improve the computation accuracy. Simulation results indicate that GMA has excellent performance in the vibration control of space solar power station. Moreover, GMA can also suppress the attitude changes due to the coupling effect. This study contributes to the stable operation and attitude calibration of the space solar power station, and provides a new reference for the research of dynamics and control of large flexible spacecraft in complex environments.
机译:在该研究中,提出了一种新方法,采用巨型磁致伸缩致动器(GMA)来控制轨道中空间太阳能电站(SSP)的结构振动。 SSP的耦合动态模型,在汉密尔顿系统中建立了具有自由端的Euler-Bernoulli光束。具有大应变系数,快速响应和强稳定性的GMA耦合到SSP的表面进行振动控制。这项工作特别考虑了振动姿态和复杂的空间环境的耦合效果,例如阳光压力和热冲击,以提高计算精度。仿真结果表明,空间太阳能电站的振动控制具有优异的性能。此外,GMA也可以抑制由于耦合效果导致的姿态变化。本研究有助于太阳能发电站的稳定运行和姿态校准,为复杂环境中的大型柔性航天器进行了动态和控制的研究提供了新的参考。

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