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Technology Development for a Stirling Radioisotope Power System for Deep Space Missions

机译:用于深空任务的斯特林放射性同位素动力系统的技术开发

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摘要

NASA Glenn Research Center and the Department of Energy (DOE) are developing a Stirling convertor for an advanced radioisotope power system to provide spacecraft on-board electric power for NASA deep space missions. NASA Glenn is addressing key technology issues through the use of two NASA Phase 2 SBIRs with Stirling Technology Company (STC) of Kennewick, WA. Under the first SBIR, STC demonstrated a 40 to 50 fold reduction in vibrations, compared to an unbalanced convertor, with a synchronous connection of two thermodynamically independent free-piston Stirling convertors. The second SBIR is for the development of an Adaptive Vibration Reduction System (AVRS) that will essentially eliminate vibrations over a mission lifetime, even in the unlikely event of a failed convertor. This paper discusses the status and results for these two SBIR projects and also presents results for characterizing the friction factor of high-porosity random fiber regenerators that are being used for this application.
机译:美国国家航空航天局格伦研究中心和能源部(DOE)正在开发一种斯特林转换器,用于先进的放射性同位素动力系统,以便为NASA深空飞行任务提供航天器的机载电力。美国宇航局格伦正在与华盛顿州肯纳威克的斯特林技术公司(STC)一起使用两个美国宇航局第二阶段SBIR解决关键技术问题。在第一个SBIR下,与不平衡转换器相比,STC的振动降低了40至50倍,并同时连接了两个热力学独立的自由活塞斯特林转换器。第二个SBIR用于开发自适应减振系统(AVRS),即使在不太可能发生的转换器故障的情况下,该系统也将基本消除整个任务寿命内的振动。本文讨论了这两个SBIR项目的状态和结果,并提供了表征用于此应用的高孔隙度随机纤维再生器的摩擦系数的结果。

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