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The Interplay Between Hardware and Control System Design in the Development of the Active Rack Isolation System

机译:有源机架隔离系统开发中硬件与控制系统设计之间的相互作用

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摘要

A primary mission of the International Space Station (ISS) is to provide a premier microgravity laboratory environment for conducting acceleration sensitive scientific research. In order to accomplish this goal, vibroacoustic disturbances caused by station activities that occur during the microgravity mode of operation, must be controlled. In addition to source isolation and other passive isolation methods, the ISS uses active isolation at the receiver, through the use of an Active Rack Isolation System (ARIS), as part of its overall vibration isolation strategy. A schematic diagram of a typical ARIS payload rack is shown. The ARIS isolation control system senses rack acceleration via three triaxial accelerometer heads and uses eight pushrod actuators to perform active vibration attenuation. Position sensors housed in the actuator assembly are used to sense the relative position between the rack and the station. Electrical power, data and other essential resources are routed through a set of umbilicals that interface with a passthrough panel at the bottom of the rack. A representative umbilical set is shown.
机译:国际空间站(ISS)的主要任务是为进行加速度敏感的科学研究提供一个首要的微重力实验室环境。为了实现此目标,必须控制在微重力操作模式期间发生的站位活动引起的振动声干扰。除了源隔离和其他被动隔离方法外,ISS还通过使用主动机架隔离系统(ARIS)在接收器处使用主动隔离,作为其整体振动隔离策略的一部分。显示了典型的ARIS有效负载机架的示意图。 ARIS隔离控制系统通过三个三轴加速度计测头感应机架加速,并使用八个推杆执行器进行主动振动衰减。装在执行器组件中的位置传感器用于感应机架和工位之间的相对位置。电力,数据和其他重要资源通过一组脐带缆进行布线,这些脐带缆与机架底部的直通面板连接。显示了代表性的脐带组。

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