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在月球风化层复合材料中平衡强度与极端热韧性:多壁碳纳米管的作用

Balancing Strength and Extreme Thermal Resilience in Lunar Regolith Composites: The Role of Multi-Walled Carbon Nanotubes.

作者信息

Hoe Andrea J, Tarafdar Amirreza, Lin Wenhua, Fiske Michael R, Edmunson Jennifer E, Wang Yeqing

机构信息

Department of Mechanical and Aerospace Engineering, Syracuse University, Syracuse, NY, 13244, USA.

Amentum Space Exploration Division serving NASA MSFC, Huntsville, Alabama, 35806, USA.

出版信息

Small. 2025 Jul;21(26):e2502220. doi: 10.1002/smll.202502220. Epub 2025 May 13.

Abstract

The National Aeronautics and Space Administration's (NASA) Artemis program stands at the forefront of commercial space initiatives, aiming to establish sustainable lunar habitats, demanding resilient construction materials with minimal reliance on Earth-based resources. In response to these demands, this study explores the feasibility of reinforcing lunar regolith with multi-walled carbon nanotubes (MWCNTs) while relying on minimal water and additives for composite fabrication as a potential solution for building semi-permanent Moon bases. Composites incorporating 0.00, 0.25, 0.50, and 1.00 wt.% MWCNTs are subjected to freeze-thaw cycles, vacuum pressures, ambient environments, and oven-curing methods to emulate the Moon's harsh environment. Results show that ambient-cured composites containing MWCNTs achieve compressive strengths exceeding 35 MPa, resulting in a 44.44% increase compared to the sample without MWCNTs, highlighting the reinforcing potential of carbon nanotubes (CNTs) for extraterrestrial applications. However, thermal cycling reveals performance limitations due to mismatched coefficients of thermal expansion between MWCNTs and the regolith matrix, causing microcracking. In contrast, vacuum-cured MWCNT-free samples surpass 45 MPa, indicating that curing protocols can significantly influence densification and mechanical properties. These findings underscore the trade-offs between material composition, curing approaches, and thermal stability, offering key insights into designing robust, resource-efficient lunar construction.

摘要

美国国家航空航天局(NASA)的阿尔忒弥斯计划处于商业太空计划的前沿,旨在建立可持续的月球栖息地,这需要依赖最少地球资源的高韧性建筑材料。为响应这些需求,本研究探讨了在复合制造过程中依靠最少的水和添加剂,用多壁碳纳米管(MWCNT)增强月球风化层的可行性,以此作为建造半永久性月球基地的潜在解决方案。将含有0.00、0.25、0.50和1.00 wt.% MWCNT的复合材料置于冻融循环、真空压力、环境条件和烘箱固化方法中,以模拟月球的恶劣环境。结果表明,含有MWCNT的环境固化复合材料的抗压强度超过35 MPa,与不含MWCNT的样品相比提高了44.44%,突出了碳纳米管(CNT)在地球外应用中的增强潜力。然而,热循环显示,由于MWCNT与风化层基体之间的热膨胀系数不匹配,导致微裂纹,从而存在性能限制。相比之下,真空固化的不含MWCNT的样品超过45 MPa,这表明固化方案可显著影响致密化和机械性能。这些发现强调了材料成分、固化方法和热稳定性之间的权衡,为设计坚固、资源高效的月球建筑提供了关键见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbf0/12232240/083aa3ffd7e4/SMLL-21-2502220-g002.jpg

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