空间核动力系统能量转换技术的比较

L. Mason
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引用次数: 9

摘要

空间核动力系统的一个关键部件是能量转换子系统,它将核热能转换为电能。核系统为在缺乏或有限的恶劣空间环境中需要长时间供电的任务提供了有利的选择。有两种主要的核能技术选择。放射性同位素电力系统(RPS)利用Pu238的自然衰变热产生高达约一千瓦的电力水平。裂变动力系统(FPS)依靠U235的持续裂变反应,并提供从千瓦到兆瓦的电力供应潜力。核动力任务的例子包括火星科学探测器(如好奇号,火星2020),月球和火星表面着陆器,载人表面前哨站,深空行星轨道器,海洋世界科学着陆器,以及利用核电推进(NEP)的机器人空间探测器。本文研究了可用于RPS和FPS的能量转换技术选项,并对它们的相对性能进行了评估。
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A Comparison of Energy Conversion Technologies for Space Nuclear Power Systems
A key element of space nuclear power systems is the energy conversion subsystem that converts the nuclear heat into electrical power. Nuclear systems provide a favorable option for missions that require long-duration power in hostile space environments where sunlight for solar power is absent or limited. There are two primary nuclear power technology options. Radioisotope Power System (RPS) utilize the natural decay heat from Pu238 to generate electric power levels up to about one kilowatt. Fission Power System (FPS) rely on a sustained fission reaction of U235 and offer the potential to supply electric power from kilowatts to megawatts. Example missions for nuclear power include Mars science rovers (e.g. Curiosity, Mars 2020), lunar and Mars surface landers, crewed surface outposts, deep space planetary orbiters, Ocean World science landers, and robotic space probes that utilize nuclear electric propulsion (NEP). This paper examines the energy conversion technology options that can be used with RPS and FPS, and provides an assessment of their relative performance.
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