TY - JOUR
T1 - Development of lunar regolith composite and structure via laser-assisted sintering
AU - Zhao, Hua
AU - Meng, Lu
AU - Li, Shaoying
AU - Zhu, Jihong
AU - Yuan, Shangqin
AU - Zhang, Weihong
N1 - Publisher Copyright:
© 2022, Higher Education Press.
PY - 2022/3
Y1 - 2022/3
N2 - Aiming at the exploration and resource utilization activities on the Moon, in situ resource utilization and in situ manufacturing are proposed to minimize the dependence on the ground transportation supplies. In this paper, a laser-assisted additive manufacturing process is developed to fabricate lunar regolith composites with PA12/SiO2 mixing powders. The process parameters and composite material compositions are optimized in an appropriate range through orthogonal experiments to establish the relationship of process—structure—property for lunar regolith composites. The optimal combination of composite material compositions and process parameters are mixing ratio of 50/50 in volume, laser power of 30 W, scanning speed of 3500 mm/s, and scanning hatch space of 0.2 mm. The maximum tensile strength of lunar regolith composites reaches 9.248 MPa, and the maximum depth of surface variation is 120.79 µm, which indicates poor powder fusion and sintering quality. Thereafter, the mechanical properties of laser-sintered lunar regolith composites are implemented to the topology optimization design of complex structures. The effectiveness and the feasibility of this laser-assisted process are potentially developed for future lightweight design and manufacturing of the solar panel installed on the lunar rover.[Figure not available: see fulltext.].
AB - Aiming at the exploration and resource utilization activities on the Moon, in situ resource utilization and in situ manufacturing are proposed to minimize the dependence on the ground transportation supplies. In this paper, a laser-assisted additive manufacturing process is developed to fabricate lunar regolith composites with PA12/SiO2 mixing powders. The process parameters and composite material compositions are optimized in an appropriate range through orthogonal experiments to establish the relationship of process—structure—property for lunar regolith composites. The optimal combination of composite material compositions and process parameters are mixing ratio of 50/50 in volume, laser power of 30 W, scanning speed of 3500 mm/s, and scanning hatch space of 0.2 mm. The maximum tensile strength of lunar regolith composites reaches 9.248 MPa, and the maximum depth of surface variation is 120.79 µm, which indicates poor powder fusion and sintering quality. Thereafter, the mechanical properties of laser-sintered lunar regolith composites are implemented to the topology optimization design of complex structures. The effectiveness and the feasibility of this laser-assisted process are potentially developed for future lightweight design and manufacturing of the solar panel installed on the lunar rover.[Figure not available: see fulltext.].
KW - in situ manufacturing
KW - laser-assisted powder fusion process
KW - mechanical properties
KW - topological structure design
UR - https://www.scopus.com/pages/publications/85127286783
U2 - 10.1007/s11465-021-0662-2
DO - 10.1007/s11465-021-0662-2
M3 - 文章
AN - SCOPUS:85127286783
SN - 2095-0233
VL - 17
JO - Frontiers of Mechanical Engineering
JF - Frontiers of Mechanical Engineering
IS - 1
M1 - 6
ER -