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EXTENSIBILITY OF THE FISSION SURFACE POWER (FSP) SYSTEM FROM THE MOON TO MARS

机译:从月球到火星的裂变表面电力(FSP)系统的可扩展性

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Fission reactors have great near-term potential to power human and robotic missions/outposts on the surface of the Moon and Mars (and potentially other planets, moons, and asteroids). The ability to provide a power-rich environment that is independent of solar intensity, nights, dust storms, etc., is of significant (perhaps enabling) importance to the further expansion of humans into our solar system. NASA's Reference Fission Surface Power (FSP) System is a 40 k We system that has been primarily designed for lunar applications. This paper examines the extensibility of the FSP design and technology for potential missions on Mars. Possible impacts include the effects of changes in heat sink, gravity, day-night cycles, mission transit time, communication delay, and the chemistry of the regolith and atmosphere. One of the biggest impacts might be differences in the potential utilization of in-situ materials for shielding. Another major factor is that different missions will likely require different performance requirements, e.g. power, lifetime and mass. This paper concludes that the environmental differences between potential mission locations will not require significant changes in design and technologies, unless performance requirements for a specific mission are substantially different than those adopted for the FSP. The primary basis for this conclusion is that the FSP has been designed with robust materials and design margins.
机译:裂变反应堆有很大的短期潜力,动力和人类在月球和火星表面的机器人任务/哨所(和潜在的其他行星,卫星和小行星)。提供电力丰富的环境,是独立的太阳能强度,夜,沙尘暴等的能力,是显著(也许使)重视进一步扩大人类进入太阳系。美国航空航天局的参考裂变表面电源(FSP)系统是一个40K的系统,我们已经被主要设计月球应用。本文考察了FSP设计和技术火星上潜在任务的可扩展性。可能影响包括在散热片上,重力,昼夜周期,任务渡越时间,通信延迟的变化的影响,和风化层和大气的化学成分。其中最大的影响可能是原位材料用于屏蔽潜在利用差异。另一个主要因素是不同的任务可能会需要不同的性能要求,例如功率,寿命和质量。本文的结论是潜在的任务地点之间的环境差异不会要求在设计和技术显著的变化,除非针对特定的任务性能的要求比对FSP通过的显着不同。对于这个结论的主要依据是,FSP的设计具有强大的材料和设计裕量。

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