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Carbon-Carbon-Composite Salt-Cooled Electric Space Reactors

机译:碳碳复合盐冷电空间反应堆

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The primary requirements for a deep space or planetary nuclear reactor for production ofrnelectricity are reliability, long life, and a high power-to-mass ratio. Advanced reactors (core, structure,power-conversion systems, radiator, etc.) are proposed that are built entirely from carbon-based materials that use salts (liquid or gas) as the heat transfer medium between the reactor and power-generation equipment and/or heat rejection systems to create reactor systems with very high power-to-mass ratios. While currently proposed space nuclear reactors have peak temperatures between 900 and 1400K withrnpotential efficiencies as high as 30% for advanced Stirling engines, the new reactors would have peakrnoperating temperatures between 1800 and 2300K with potential efficiencies twice that of other concepts.rnBecause there are no other classes of materials that can potentially operate at such temperatures and havernvery low masses, most of the components of such a space electric nuclear reactor must be built of carbon-based materials. Based on theoretical considerations and the developments in carbon-carbon technologiesrnover the last 20 years, such machines appear to be potentially viable. However, significant research isrnrequired to demonstrate feasibility and a major long-term development program would be required to buildrnsuch machines.
机译:用于产生电力的深空或行星核反应堆的主要要求是可靠性,长寿命和高功率质量比。提出了先进的反应堆(堆芯,结构,功率转换系统,散热器等),这些反应堆完全由碳基材料制成,这些材料使用盐(液体或气体)作为反应器与发电设备之间的传热介质, /或排热系统来创建具有非常高的功率质量比的反应堆系统。虽然目前建议的空间核反应堆的峰值温度在900至1400K之间,而先进的斯特林发动机的最高电势效率高达30%,但新的反应堆将在1800至2300K的峰值温度下运行,其潜在效率是其他概念的两倍。在可能在这样的温度下运行且质量非常低的多种材料中,这种太空核反应堆的大多数组件必须由碳基材料制成。基于理论上的考虑和最近20年来碳-碳技术的发展,这种机器似乎具有潜在的可行性。但是,需要大量研究来证明可行性,并且需要长期的长期开发计划来制造这种机器。

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