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Mechanical behaviour of additively manufactured lunar regolith simulant components

机译:增材制造的月球长石模拟物组件的机械性能

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Additive manufacturing and its related techniques have frequently been put forward as a promising candidate for planetary in-situ manufacturing, from building life-sustaining habitats on the Moon to fabricating various replacements parts, aiming to support future extra-terrestrial human activity. This paper investigates the mechanical behaviour of lunar regolith simulant material components, which is a potential future space engineering material, manufactured by a laser-based powder bed fusion additive manufacturing system. The influence of laser energy input during processing was associated with the evolution of component porosity, measured via optical and scanning electron microscopy in combination with gas expansion pycnometry. The compressive strength performance and Vickers micro-hardness of the components were analysed and related back to the processing history and resultant microstructure of the lunar regolith simulant build material. Fabricated structures exhibited a relative porosity of 44-49% and densities ranging from 1.76 to 2.3 g cm(-3), with a maximum compressive strength of 4.2 +/- 0.1 MPa and elastic modulus of 287.3 +/- 6.6 MPa, the former is comparable to a typical masonry clay brick (3.5 MPa). The additive manufacturing parts also had an average hardness value of 657 +/- 14 HV0.05/15, better than borosilicate glass (580 HV). This study has shed significant insight into realising the potential of a laser-based powder bed fusion additive manufacturing process to deliver functional engineering assets via in-situ and abundant material sources that can be potentially used for future engineering applications in aerospace and astronautics.
机译:增材制造及其相关技术经常被提出作为行星原位制造的有希望的候选者,从在月球上建立维持生命的栖息地到制造各种替换零件,旨在支持未来的地球外人类活动。本文研究了基于激光的粉末床聚变增材制造系统制造的月球重石模拟物材料成分的机械性能,这是一种潜在的未来太空工程材料。加工过程中输入的激光能量的影响与部件孔隙率的演变有关,该孔隙率是通过光学和扫描电子显微镜结合气体膨胀比重瓶法测得的。分析了组件的抗压强度性能和维氏显微硬度,并与处理历史以及月球长石模拟建筑材料的最终微观结构有关。预制结构的相对孔隙度为44-49%,密度为1.76至2.3 g cm(-3),最大抗压强度为4.2 +/- 0.1 MPa,弹性模量为287.3 +/- 6.6 MPa,前者相当于典型的砖石粘土砖(3.5 MPa)。增材制造部件的平均硬度值也为657 +/- 14 HV0.05 / 15,优于硼硅酸盐玻璃(580 HV)。这项研究对实现基于激光的粉末床熔合添加剂制造工艺的潜力具有重要的见识,该工艺可以通过现场和丰富的材料来源提供功能性工程资产,这些资源可潜在地用于航空航天业的未来工程应用。

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