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The Concept and Analytical Investigation of CO2 and Steam Co-Electrolysis for Resource Utilization in Space Exploration

机译:二氧化碳和蒸汽共电解用于空间勘探资源利用的概念和分析研究

摘要

CO2 acquisition and utilization technologies will have a vital role in designing sustainable and affordable life support and in situ fuel production architectures for human and robotic exploration of Moon and Mars. For long-term human exploration to be practical, reliable technologies have to be implemented to capture the metabolic CO2 from the cabin air and chemically reduce it to recover oxygen. Technologies that enable the in situ capture and conversion of atmospheric CO2 to fuel are essential for a viable human mission to Mars. This paper describes the concept and mathematical analysis of a closed-loop life support system based on combined electrolysis of CO2 and steam (co-electrolysis). Products of the coelectrolysis process include oxygen and syngas (CO and H2) that are suitable for life support and synthetic fuel production, respectively. The model was developed based on the performance of a co-electrolysis system developed at Idaho National Laboratory (INL). Individual and combined process models of the co-electrolysis and Sabatier, Bosch, Boudouard, and hydrogenation reactions are discussed and their performance analyses in terms of oxygen production and CO2 utilization are presented.
机译:二氧化碳的获取和利用技术将在设计可持续和负担得起的生命支持以及用于月球和火星的人类和机器人探索的原位燃料生产架构中发挥至关重要的作用。为了使长期的人类探索成为现实,必须实施可靠的技术,以从机舱空气中捕获新陈代谢的CO2并化学还原以回收氧气。能够现场捕获大气中二氧化碳并将其转化为燃料的技术对于人类可行的火星飞行任务至关重要。本文介绍了基于CO2和蒸汽联合电解(共电解)的闭环生命支持系统的概念和数学分析。共电解过程的产品包括氧气和合成气(CO和H2),分别适合于维持生命和合成燃料的生产。该模型是根据爱达荷州国家实验室(INL)开发的共电解系统的性能开发的。讨论了共电解和Sabatier,Bosch,Boudouard和加氢反应的单独和组合过程模型,并根据氧气生产和CO2利用进行了性能分析。

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