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Microgravity Vibration Isolation Mount An Example of a Multi-Processor Architecture in a Space Application

机译:微重力隔振支架在空间应用中的多处理器架构示例

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Designing systems for operation on manned spacecraft presents unique challenges arising primarily from two areas: the space radiation environment is more severe than that on the Earth's surface and the restricted access to hardware once launched limits response to system component failure. The MIM includes a combination of hardware and software health monitoring to detect and in most cases automatically recover from SEUs. The modular architecture of the electronics allows carrying spare modules that are easily replaced on orbit and addresses the maintainability issue.MIM-2 takes advantage of a multiprocessing architecture to achieve the system design goal of implementing an effective isolation while ensuring a modular and robust hardware platform. The experiment controller adds flexibility to the system by providing multiple user configurable I/O channels and associated control algorithms. The planned real-time analysis capability will add efficiency to MIM-2 by providing on-line analysis and pre-processing of data generated by experiments.
机译:在载人航天器上运行的系统设计提出了独特的挑战,主要来自两个方面:空间辐射环境比地球表面的环境更为严峻,一旦发射,对硬件的访问受限,限制了对系统组件故障的响应。 MIM包含硬件和软件运行状况监视的组合,以检测并在大多数情况下自动从SEU中恢复。电子产品的模块化体系结构允许携带易于在轨道上更换的备用模块,并解决了可维护性问题。MIM-2利用多处理体系结构来实现实现有效隔离的系统设计目标,同时确保模块化和强大的硬件平台。实验控制器通过提供多个用户可配置的I / O通道和相关的控制算法,为系统增加了灵活性。计划的实时分析功能将通过对实验生成的数据进行在线分析和预处理,从而提高MIM-2的效率。

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