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Electrostatic Beneficiation of Lunar Regolith: Applications in In-Situ Resource Utilization

机译:月牙石的静电选矿:在原地资源利用中的应用

摘要

Upon returning to the moon, or further a field such as Mars, presents enormous challenges in sustaining life for extended periods of time far beyond the few days the astronauts experienced on the moon during the Apollo missions. A stay on Mars is envisioned to last several months, and it would be cost prohibitive to take all the requirements for such a stay from earth. Therefore, future exploration missions will be required to be self-sufficient and utilize the resources available at the mission site to sustain human occupation. Such an exercise is currently the focus of intense research at NASA under the In-situ Resource Utilization (ISRU) program. As well as oxygen and water necessary for human life, resources for providing building materials for habitats, radiation protection, and landing/launch pads are required. All these materials can be provided by the regolith present on the surface as it contains sufficient minerals and metals oxides to meet the requirements. However, before processing, it would be cost effective if the regolith could be enriched in the mineral(s) of interest. This can be achieved by electrostatic beneficiation in which tribocharged mineral particles are separated out and the feedstock enriched or depleted as required. The results of electrostatic beneficiation of lunar simulants and actual Apollo regolith, in lunar high vacuum are reported in which various degrees of efficient particle separation and mineral enrichment up to a few hundred percent were achieved.
机译:回到月球或其他诸如火星的领域后,在延长生命维持寿命方面提出了巨大挑战,远远超出了阿波罗任务期间宇航员在月球上经历的几天。预计在火星上停留将持续数月,而从地面上撤走所有此类要求将花费巨大。因此,未来的勘探任务将需要自给自足,并利用任务现场可用的资源维持人类的占领。目前,这种做法是美国宇航局在原地资源利用(ISRU)计划下进行的深入研究的重点。除了人类生命所需的氧气和水以外,还需要用于提供栖息地建筑材料,辐射防护和着陆/发射台的资源。所有这些材料都可以通过存在于表面的粉煤灰提供,因为它含有足够的矿物质和金属氧化物以满足要求。但是,在加工之前,如果可以使重碎石富含目标矿物,则具有成本效益。这可以通过静电选矿实现,其中将带摩擦的矿物颗粒分离出来,并根据需要富集或消耗原料。据报道,在月球高真空下,月球模拟物和实际的阿波罗重矿物进行静电选矿的结果表明,各种程度的有效颗粒分离和矿物质富集达到了数百%。

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