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Spacecraft High Precision Optimized Control for Free-falling Test Mass Tracking in Lisa-Pathfinder Mission

机译:SPACECRAFT高精度优化控制LISA-PATHFINDER任务中的无防垢测试质量跟踪

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LISA (Laser Interferometer Space Antenna) will be the first space mission for the in-flight detection of gravitational waves. In order to reduce the mission risk, some of the key technologies needed for LISA will be tested by means of the LISA Test-flight Package (LTP) on board the LISA Pathfinder mission (SMART-2). The goal of the LISA Pathfinder is to provide in-flight testing of the free-fall level of a reference Test Mass (TM) to within a factor 10 from the LISA top-science requirement. One of the critical technologies to be tested is the Test Masses Drag-Free and Attitude Control System (DFACS), which is the system that has to provide the test masses inertial insulation through satellite relative position control up to the nanometer level. The system analyzed in the paper is modelled as a multibody made of the satellite, actuated through thrusters, and two test masses, kept at a fixed relative distance by using a capacitive actuation. The paper presents a new control design procedure for this MIMO system. The procedure, based on a multi-objective optimization, yields to controllers that achieve the prescribed levels of performance in terms of disturbance rejection, robustness and phase margin.
机译:LISA(激光干涉仪空间天线)将是第一次空间检测引力波的空间任务。为了降低使命风险,LISA所需的一些关键技术将通过LISA Pathfinder Mission(SMART-2)的LISA试验飞行包(LTP)进行测试。 LISA探测器的目标是提供参考测试质量(TM)的自由落水平的飞行测试,以在LISA Top-Checial-Checion Requidence的10系数中。要测试的关键技术之一是无阻力和姿态控制系统(DFAC)的测试质量,这是必须通过卫星相对位置控制到纳米级的测试质量惯性绝缘系统。本文中分析的系统被建模为由卫星制成的多体体,通过推动器和两个测试质量致动,通过使用电容驱动保持在固定的相对距离。本文为此MIMO系统提供了一种新的控制设计程序。基于多目标优化的程序,在扰动抑制,鲁棒性和相位余量方面产生规定的性能水平的控制器。

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