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Finite Element Analysis of Three Methods for Microwave Heating of Planetary Surfaces

机译:三种行星表面微波加热方法的有限元分析

摘要

In-Situ Resource Utilization will be Ground Breaking technology for sustained exploration of space. Volatiles are present in planetary regolith, but water by far has the most potential for effective utilization. The presence of water at the lunar poles and Mars opens the possibility of using the hydrogen for propellant on missions beyond Earth orbit. Likewise, the oxygen could be used for in-space propulsion for lunar ascent/descent and for space tugs from low lunar orbit to low Earth orbit. Water is also an effective radiation shielding material as well as a valuable expendable (water and oxygen) required for habitation in space. Because of the strong function of water vapor pressure with temperature, heating regolith effectively liberates water vapor by sublimation. Microwave energy will penetrate soil and heat from within, much more efficiently than heating from the surface with radiant heat. This is especially true under vacuum conditions since the heat transfer rate is very low. The depth of microwave penetration is a strong function of the microwave frequency and to a lesser extent on regolith dielectric properties. New methods for delivery of microwaves into lunar and planetary surfaces is being prototyped with laboratory experiments and modeled with COMSOL MultiPhysics. Recent results are discussed.
机译:原地资源利用将是持续探索太空的开创性技术。挥发物存在于行星重钙石中,但是水到目前为止具有最有效利用的潜力。在月球极和火星上存在水,为在地球轨道以外的任务中使用氢作为推进剂提供了可能性。同样,氧气可用于月球上升/下降以及从低月球轨道到低地球轨道的太空拖船的空间推进。水还是一种有效的辐射屏蔽材料,也是在太空中居住所需的宝贵消耗品(水和氧气)。由于水蒸气压力随温度的强烈作用,加热碎石有效地通过升华释放水蒸气。微波能将土壤和热量从内部渗透,比利用辐射热从表面加热要有效得多。由于传热速率非常低,因此在真空条件下尤其如此。微波穿透的深度是微波频率的强大函数,并且在较小程度上影响了再硬质介电性能。正在通过实验室实验来原型化将微波传送到月球和行星表面的新方法,并使用COMSOL MultiPhysics进行建模。讨论了最近的结果。

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