The SPACE Computer Code for Analyzing the International Space Station Electrical Power System: Past, Present, and Future

S. Miller, Brandon T. Klefman, S. Korn, Terrian V. Nowden, A. Delleur, D. Mckissock
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引用次数: 1

Abstract

The System Power Analysis for Capability Evaluation (SPACE) computer code was initially developed by NASA in 1988 to assess the Space Station Freedom electric power system 1,2 and later adapted to support contractor electrical power system capability analyses for the International Space Station (ISS). Over time, the code has supported many efforts such as ISS redesign activities in the early 1990s, assessment of time-phased loads against power system operating limits for future ISS assembly flights (including Certification of Flight Readiness reviews by the ISS program office), and determining the optimum solar array gimbal positions while respecting keep-out zones which minimize both solar array contamination and structural loads. The code has been validated by comparisons with ISS on-orbit data in multiple validation episodes. Recent updates to the code include the incorporation of a Lithium-Ion battery model in addition to the nickel-hydrogen battery model and modifications to the solar array degradation model to better match on-orbit test results. SPACE has also been extended beyond the ISS to include modeling of the Orion Multi-Purpose Crew Vehicle electrical power system (SPACE-MPCV) and Mars Surface Electrical Power Systems (MSEPS). Portions of SPACE were integrated with a trajectory code to form a Solar Electric Propulsion Simulation (SEPSim), which can be used for analyzing solar electric propulsion missions. In addition, SPACE methods and subroutines have been adapted to a multitude of other projects 3 - 7 . This paper summarizes the initial code development and subsequent code utilization in the context of the overall ISS program development and on-orbit operations. Recent updates and results from the code are discussed, including preliminary analyses for the Orion power system.
分析国际空间站电力系统的空间计算机代码:过去、现在和未来
用于能力评估的系统功率分析(SPACE)计算机代码最初由NASA在1988年开发,用于评估空间站自由电力系统1,2,后来用于支持国际空间站(ISS)的承包商电力系统能力分析。随着时间的推移,该代码支持了许多工作,如20世纪90年代初的国际空间站重新设计活动,根据未来国际空间站组装飞行的电力系统运行限制评估时间阶段负载(包括国际空间站项目办公室的飞行准备审查认证),以及确定最佳太阳能电池阵列框架位置,同时尊重将太阳能电池阵列污染和结构负载最小化的保护区域。该代码已通过与国际空间站在轨数据在多个验证集的比较进行了验证。最近对代码的更新包括除了镍氢电池模型外,还纳入了锂离子电池模型,并修改了太阳能电池阵列退化模型,以更好地匹配在轨测试结果。SPACE还扩展到国际空间站之外,包括猎户座多用途乘员车辆电力系统(SPACE- mpcv)和火星表面电力系统(MSEPS)的建模。SPACE的一部分与轨道代码集成形成太阳能电力推进仿真(SEPSim),可用于分析太阳能电力推进任务。此外,SPACE方法和子程序已适应于许多其他项目3 - 7。本文总结了在整个国际空间站项目发展和在轨运行的背景下,最初的代码开发和随后的代码利用。讨论了代码的最新更新和结果,包括对猎户座动力系统的初步分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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