基于月球风化层选择性激光烧结技术的机器人3D打印月球仿生建筑

Philip F. Yuan, Xinjie Zhou, Hao Wu, Liming Zhang, Lijie Guo, Yun Shi, Zhe Lin, Jinyu Bai, Youhai Yu, Shanglu Yang
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引用次数: 0

摘要

月球基地不仅是地外空间探索的实验站,也是人类进行探索的居所。建造月球基地面临诸多障碍,需要环境感知、反馈设计和施工方法。本文介绍了一个集成的制造过程,该过程将设计、3D 打印工作流程和建造细节结合在一起,以建造一个仿生、可重构和高性能的月球基地原型。该研究包括月球碎屑三维打印机理研究、粉末铺设和压实过程的实时控制以及三维打印工具端系统的开发。本文提出了渐进优化设计方法、月壤-聚芳醚酮(PAEK)混合粉末的成型原理和分级策略,以及双光场三维激光打印原理,提出并解决了月面原位制造的诸多科学问题。本文提出的技术策略的可行性通过所展示的实证样本得到了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robotic 3D printed lunar bionic architecture based on lunar regolith selective laser sintering technology

The lunar base is not only an experimental station for extraterrestrial space exploration but also a dwelling for humans performing this exploration. Building a lunar base presents numerous obstacles and requires environmental perception, feedback design, and construction methods. An integrated fabrication process that incorporates design, 3D printing workflow, and construction details to build a bionic, reconfigurable and high-performance lunar base prototype is presented in this paper. The research comprises the study of the lunar regolith 3D printing mechanism, the real-time control of powder laying and compaction procedure, and the development of a 3D printing tool end system. In this paper, many scientific questions regarding in situ fabrication on the lunar surface are raised and addressed with the proposal of a progressive optimization design method, the molding principle, and gradation strategy of lunar soil-polyaryletherketone (PAEK) hybrid powder, and the principle of dual-light field 3D laser printing. The feasibility of the technical strategy proposed in this paper is verified by the presented empirical samples.

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