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Real-time RMS active damping augmentation: Heavy and very light payload evaluations

机译:实时RMS主动阻尼增强:有效载荷评估非常轻巧

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摘要

Controls-Structures Integration Technology has been applied to the Space Shuttle Remote Manipulator System (RMS) to improve on-orbit performance. The objective was to actively damp undesired oscillatory motions of the RMS following routine payload maneuvering and Shuttle attitude control thruster firings. Simulation of active damping was conducted in the real-time, man-in-the-loop Systems Engineering Simulator at NASA's Johnson Space Center. The simulator was used to obtain qualitative and quantitative data on active damping performance from astronaut operators. Using a simulated three-axis accelerometer mounted on the RMS, 'sensed' vibration motions were used to generate joint motor commands that reduced the unwanted oscillations. Active damping of the RMS with heavy and light attached payloads was demonstrated in this study. Five astronaut operators examined the performance of active damping following operator commanded RMS maneuvers and Shuttle thruster firings. Noticeable improvements in the damping response of the RMS with the heavy, Hubble Space Telescope payload and the very light, astronaut in Manipulator Foot Restraint payload were observed. The potential of active damping to aid in precisely maneuvering payloads was deemed significant.
机译:控制结构集成技术已应用于航天飞机远程操纵器系统(RMS),以改善在轨性能。目的是在常规有效载荷操纵和航天飞机姿态控制推进器点火后主动抑制RMS的不希望的振荡运动。主动阻尼的仿真是在NASA约翰逊航天中心的实时人在回路系统工程仿真器中进行的。该模拟器用于从宇航员那里获得有关主动阻尼性能的定性和定量数据。使用安装在RMS上的模拟三轴加速度计,可以使用“感应”振动运动来生成联合电动机命令,从而减少不必要的振荡。在这项研究中,对有效载荷的重载和轻载均方根进行了主动阻尼。五名航天员操作员按照操作员命令的RMS操纵和航天飞机推进器点火装置检查了主动阻尼的性能。观察到重型哈勃太空望远镜有效载荷和机械手脚约束有效载荷非常轻的宇航员对RMS的阻尼响应有了明显改善。主动阻尼有助于精确操纵有效载荷的潜力被认为是巨大的。

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