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通过超快速微波烧结在月球上自主生产月壤砾石

Self-Sufficient Production of Lunar Regolith Gravels on the Moon by Ultrarapid Microwave Sintering.

作者信息

Tsubaki Shuntaro, Fujii Satoshi, Yamamoto Masahiro, Kanamori Hiroshi, Hoshino Takeshi, Hosoda Satoshi, Wada Yuji

机构信息

Faculty of Agriculture, Kyushu University, 744 Motooka, Nishi-Ku, Fukuoka 812-8581, Japan.

National Institute for Materials Science, Namiki 1-1, Tsukuba 305-0044, Ibaraki, Japan.

出版信息

ACS Omega. 2024 May 7;9(20):22488-22494. doi: 10.1021/acsomega.4c02702. eCollection 2024 May 21.

DOI:10.1021/acsomega.4c02702
PMID:38799299
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11112684/
Abstract

A sintered lunar regolith is expected to be used to construct buildings, roads, and landing pads for spacecrafts on the Moon. Here, we demonstrate that focused microwave heating is effective for the rapid solidification of the lunar regolith simulant to obtain regolith gravel without any microwave susceptor. The conventional multimode microwave oven cannot heat lunar regolith simulants and requires microwave susceptors such as silicon carbide (SiC) and thermal insulators because of its low dielectric loss. We achieved rapid microwave heating of a lunar regolith simulant without using a susceptor or thermal insulator by forming an intense microwave electric field using a cavity resonator and a semiconductor microwave oscillator. Focused microwaves at 2.45 GHz produced the gravel-shaped and solidified lunar regolith at 300 °C lower temperature than a conventional electrical furnace, where more than 1050 °C temperature was required to sinter the lunar regolith simulant. In addition, we produced larger gravel of the lunar regolith simulant using 915 MHz. The intense electric field generated by the single-mode resonator promoted the solidification of the lunar regolith simulant without any additional substances. This process enables the local production of structured lunar regoliths on the Moon without the transport of any materials from the Earth.

摘要

烧结月壤有望用于在月球上建造建筑物、道路和航天器着陆垫。在此,我们证明聚焦微波加热对于月球模拟月壤的快速固化是有效的,无需任何微波吸收体即可获得月壤砾石。传统的多模微波炉由于其低介电损耗,无法加热月球模拟月壤,需要诸如碳化硅(SiC)和热绝缘体等微波吸收体。我们通过使用腔谐振器和半导体微波振荡器形成强微波电场,在不使用吸收体或热绝缘体的情况下实现了对月球模拟月壤的快速微波加热。2.45 GHz的聚焦微波在比传统电炉低300°C的温度下产生了砾石状且固化的月球模拟月壤,而烧结月球模拟月壤需要超过1050°C的温度。此外,我们使用915 MHz产生了更大的月球模拟月壤砾石。单模谐振器产生的强电场促进了月球模拟月壤的固化,无需任何额外物质。这一过程能够在月球上就地生产结构化月壤,而无需从地球运输任何材料。

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本文引用的文献

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Real-Time Facile Detection of the WO Catalyst Oxidation State under Microwaves Using a Resonance Frequency.利用共振频率实时便捷检测微波作用下WO催化剂的氧化态
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