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Design of a Heatpipe-Cooled Mars-Surface Fission Reactor

机译:热管冷却的火星表面裂变反应堆的设计

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The next generation of robotic missions to Mars will most likely require robust power sources in the range of 3 to 20 kWe. Fission systems are well suited to provide safe, reliable, and economic power within this range. The goal of this study is to design a compact, low-mass fission system that meets Mars-surface power requirements, while maintaining a high level of safety and reliability at a relatively low cost. The Heatpipe Power System (HPS) is one possible approach for producing near-term, low-cost, space fission power. The goal of the HPS project is to devise an attractive space fission system that can be developed quickly and affordably. The primary ways of doing this are by using existing technology and by designing the system for inexpensive testing. If the system can be designed to allow highly prototypic testing with electrical heating, then an exhaustive test program can be carried out quickly and inexpensively, and thorough testing of the actual flight unit can be performed―which is a major benefit to reliability. Over the past 4 years, three small HPS proof-of-concept technology demonstrations have been conducted, and each has been highly successful. The Heatpipe-Operated Mars Exploration Reactor (HOMER) is a derivative of the HPS designed especially for producing power on the surface of Mars. The HOMER-15 is a 15-kWt reactor that couples with a 3-kWe Stirling engine power system. The reactor contains stainless-steel (SS)-clad uranium nitride (UN) fuel pins that are structurally and thermally bonded to SS/sodium heatpipes. Fission energy is conducted from the fuel pins to the heatpipes, which then carry the heat to the Stirling engine. This paper describes the attributes, specifications, and performance of a 15-kWt HOMER reactor.
机译:下一代执行火星机器人任务很可能需要3至20 kWe范围内的强大动力源。裂变系统非常适合在此范围内提供安全,可靠和经济的动力。这项研究的目的是设计一种紧凑,低质量的裂变系统,该系统能够满足火星表面的功率要求,同时以相对较低的成本保持较高的安全性和可靠性。热管电力系统(HPS)是一种产生短期,低成本,空间裂变电力​​的可能方法。 HPS项目的目标是设计一种有吸引力的太空裂变系统,该系统可以快速,经济地开发。做到这一点的主要方法是使用现有技术并设计用于廉价测试的系统。如果将系统设计为允许通过电加热进行高度原型测试,则可以快速,廉价地执行详尽的测试程序,并且可以对实际飞行单元进行全面测试,这对可靠性具有重大好处。在过去的四年中,已经进行了三个小型的HPS概念验证技术演示,每个演示都非常成功。热管式火星探测反应堆(HOMER)是HPS的衍生产品,专为在火星表面发电而设计。 HOMER-15是一台15千瓦的反应堆,与3-kWe斯特林发动机动力系统耦合。该反应堆包含不锈钢(SS)包覆的氮化铀(UN)燃料销,这些销在结构上和热力上均与SS /钠热管结合。裂变能从燃料销传导到热管,然后热管将热量传递到斯特林发动机。本文介绍了15千瓦HOMER反应堆的属性,规格和性能。

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