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A Basic LEGO Reactor Design for the Provision of Lunar Surface Power

机译:提供月球表面动力的基本乐高反应堆设计

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A final design has been established for a basic Lunar Evolutionary Growth-Optimized (LEGO) Reactor using current and near-term technologies. The LEGO Reactor is a modular, fast-fission, heatpipe-cooled, clustered-reactor system for lunar-surface power generation. The reactor is divided into subcritical units that can be safely launched with lunar shipments from Earth, and then emplaced directly into holes drilled into the lunar regolith to form a critical reactor assembly. The regolith would not just provide radiation shielding, but serve as neutron-reflector material as well. The reactor subunits are to be manufactured using proven and tested materials for use in radiation environments, such as uranium-dioxide fuel, stainless-steel cladding and structural support, and liquid-sodium heatpipes. The LEGO Reactor system promotes reliability, safety, and ease of manufacture and testing at the cost of an increase in launch mass per overall rated power level and a reduction in neutron economy when compared to a single-reactor system. A single unshielded LEGO Reactor subunit has an estimated mass of approximately 448 kg and provides approximately 5 kWe. The overall envelope for a single subunit with fully extended radiator panels has a height of 8.77 m and a diameter of 0.50 m. Six subunits could provide sufficient power generation throughout the initial stages of establishing a lunar outpost. Portions of the reactor may be neutronically decoupled to allow for reduced power production during unmanned periods of base operations. During later stages of lunar-base development, additional subunits may be emplaced and coupled into the existing LEGO Reactor network, subject to lunar base power demand. Improvements in reactor control methods, fuel form and matrix, shielding, as well as power conversion and heat rejection techniques can help generate an even more competitive LEGO Reactor design. Further modifications in the design could provide power generative opportunities for use on other extraterrestrial surfaces.
机译:已使用当前和近期技术为基本的月球进化生长优化(LEGO)反应堆建立了最终设计。乐高反应堆是一种模块化,快速裂变,热管冷却的成簇反应器系统,用于月球面发电。反应堆分为亚临界单元,可与来自地球的月球一起安全发射,然后直接安放在钻入月球重石的孔中,以形成关键反应堆组件。硬硅石将不仅提供辐射屏蔽,而且还用作中子反射器材料。反应堆子单元将使用经过验证和测试的用于辐射环境的材料制造,例如二氧化铀燃料,不锈钢包层和结构支架以及液钠热管。与单反应器系统相比,乐高反应堆系统提高了可靠性,安全性以及制造和测试的便利性,但代价是每单位额定总功率水平的发射质量增加,中子经济性降低。单个非屏蔽乐高反应堆子单元的估计质量约为448 kg,提供约5 kWe。具有完全扩展的散热器面板的单个子单元的总外壳高度为8.77 m,直径为0.50 m。在建立月球前哨基地的最初阶段,六个子单位可以提供足够的动力。反应器的一些部分可以被电子去耦,以允许在无人值守的基础操作期间减少功率产生。在月球基地开发的后期阶段,可根据月球基地的功率需求,将其他子单元放置并耦合到现有的LEGO Reactor网络中。反应堆控制方法,燃料形式和基​​质,屏蔽以及功率转换和散热技术的改进可以帮助产生更具竞争力的乐高反应堆设计。设计中的进一步修改可以为在其他地外表面上使用提供动力生成机会。

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