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Analysis of Thermal and Reaction Times for Hydrogen Reduction of Lunar Regolith

机译:月球长石还原氢的热反应时间分析

摘要

System analysis of oxygen production by hydrogen reduction of lunar regolith has shown the importance of the relative time scales for regolith heating and chemical reaction to overall performance. These values determine the sizing and power requirements of the system and also impact the number and operational phasing of reaction chambers. In this paper, a Nusselt number correlation analysis is performed to determine the heat transfer rates and regolith heat up times in a fluidized bed reactor heated by a central heating element (e.g., a resistively heated rod, or a solar concentrator heat pipe). A coupled chemical and transport model has also been developed for the chemical reduction of regolith by a continuous flow of hydrogen. The regolith conversion occurs on the surfaces of and within the regolith particles. Several important quantities are identified as a result of the above analyses. Reactor scale parameters include the void fraction (i.e., the fraction of the reactor volume not occupied by the regolith particles) and the residence time of hydrogen in the reactor. Particle scale quantities include the particle Reynolds number, the Archimedes number, and the time needed for hydrogen to diffuse into the pores of the regolith particles. The analysis is used to determine the heat up and reaction times and its application to NASA s oxygen production system modeling tool is noted.
机译:通过对月re石进行氢还原制氧的系统分析表明,相对时间尺度对于re石加热和化学反应对整体性能的重要性。这些值确定了系统的大小和功率要求,并且还影响了反应室的数量和操作阶段。在本文中,进行了Nusselt相关分析,以确定由中央加热元件(例如电阻加热棒或太阳能集热器热管)加热的流化床反应器中的传热速率和重熔加热时间。还开发了一种化学和运输耦合模型,用于通过连续不断的氢气流化学还原重钙石。重灰石转化发生在重灰石颗粒的表面上和内部。通过以上分析可以确定几个重要的数量。反应器规模参数包括空隙率(即,反应器体积未被重碎石颗粒占据的部分)和氢在反应器中的停留时间。颗粒物的数量包括颗粒的雷诺数,阿基米德数和氢扩散到重碎石颗粒孔中所需的时间。该分析用于确定加热和反应时间,并指出了其在NASA氧气生产系统建模工具中的应用。

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