Nuclear Power from Lunar ISRU

P. Schubert
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引用次数: 2

Abstract

Thorium on the lunar surface can be transmuted into fissile uranium suitable for a controlled chain reaction to provide heat. Thorium is fertile, requiring bombardment by neutrons to become a suitable nuclear fuel. Oxides of thorium are dense and can be concentrated and beneficiated from comminuted regolith via inertial or thermal means. A neutron flux can be provided by encasing thoria within a beryllium and graphite vessel, which emits neutrons upon exposure to gamma rays or galactic cosmic rays. After a brief period at protactinium the transmuted material becomes U-233, a desirable fuel because decay product half-lives are below 100 years. When compressed into fuel pellets the uranium oxide is configured into a reactor through which a working fluid can extract thermal power. With regolith tailings as shielding such a reactor can operate safely for 30 years. A century later, the site can be harvested for specialty elements and then made available for other uses. The advent of launch-safe nuclear rockets in space greatly expands the potential for in situ resource utilization, a space-based economy, and profitable exploitation of the asteroid belt.
来自月球ISRU的核能
月球表面的钍可以转化为易裂变的铀,适合于受控的链式反应来提供热量。钍是肥沃的,需要中子轰击才能成为合适的核燃料。钍的氧化物是致密的,可以通过惯性或热方法从粉碎的风化层中浓缩和选矿。中子通量可以通过将钍包裹在铍和石墨容器中来提供,该容器在暴露于伽马射线或银河宇宙射线时释放中子。经过一段时间的质子衰变后,这种物质就变成了U-233,这是一种理想的燃料,因为衰变产物的半衰期低于100年。当被压缩成燃料球团时,铀氧化物被配置成一个反应堆,工作流体可以通过该反应堆提取热能。该反应堆有表土尾矿保护,可安全运行30年。一个世纪后,这里可以收获一些特殊的元素,然后再用于其他用途。在太空中发射安全的核火箭的出现大大扩大了就地资源利用、天基经济和有利可图的小行星带开发的潜力。
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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