Initial performance assessment of 3D printed thin walled structures for spacecraft applications

IF 3.5 3区 材料科学 Q1 ENGINEERING, MECHANICAL Journal of Sandwich Structures & Materials Pub Date : 2024-01-29 DOI:10.1177/10996362241230576
Adrian Dumitrescu, Scott J I Walker, Federico Romei, Atul Bhaskar
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Abstract

Sandwich panels are the fundamental structural element in a wide range of applications, including in satellite primary structures. While sandwich constructions are very efficient, their complex multi-material assembly leaves room for further optimisation of the core volume and improvement in the integration phase. One key technology that can enable the transition to multifunctional sandwich panel cores tailored to certain applications is the additive manufacturing (AM) of satellite primary structure sandwich panel cores. This paper investigates the feasibility of replacing the baseline Aluminium honeycomb core with a core printed out of AlSi10Mg through Powder Bed Fusion. Sandwich panels with carbon fiber-reinforced plastic (CFRP) facesheets and printed honeycomb cores as well as fully printed corrugated panels are produced and tested under three point bending (3PB) and compression as part of the EU funded ReDSHIFT project. The Instron 5560 (3PB) and 4204 (compression) are used to perform the experiments that follow the ASTM C393-11 and C365 standards. When compared against the baseline CFRP-AL panels, the 3D printed honeycomb cores carry up to twice as much load per unit mass in bending and four times as much in compression, while also being stiffer. The fully printed corrugates samples are weaker than the honeycombs, but in conjunction with the honeycomb geometry may present a promising avenue for developing multifunctional cores. While limitations with current metal printing technology prevent AM cores from matching the mass of baseline designs, the superior specific performance and geometrical freedom make printed cores a promising design alternative.
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用于航天器的 3D 打印薄壁结构的初步性能评估
夹层板是广泛应用的基本结构元素,包括卫星的主要结构。虽然三明治结构非常高效,但其复杂的多材料组装为进一步优化芯材体积和改进集成阶段留下了空间。卫星主结构夹芯板芯材的增材制造(AM)技术是一项关键技术,可实现向针对特定应用定制的多功能夹芯板芯材的过渡。本文研究了通过粉末床熔融技术用铝硅镁打印芯材取代基准铝蜂窝芯材的可行性。作为欧盟资助的 ReDSHIFT 项目的一部分,我们制作并在三点弯曲(3PB)和压缩条件下测试了带有碳纤维增强塑料(CFRP)面板和印刷蜂窝芯的夹芯板以及完全印刷的波纹板。实验使用 Instron 5560(三点弯曲)和 4204(压缩)进行,符合 ASTM C393-11 和 C365 标准。与基线 CFRP-AL 板相比,3D 打印蜂窝芯在弯曲时承受的单位质量载荷是其两倍,在压缩时是其四倍,同时还具有更高的刚度。完全打印出来的波纹板样品比蜂窝更弱,但与蜂窝几何形状相结合,可能会成为开发多功能芯材的一个很有前景的途径。虽然目前的金属打印技术存在局限性,导致 AM 磁芯无法达到基准设计的质量,但其卓越的特定性能和几何自由度使打印磁芯成为一种很有前途的设计替代方案。
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来源期刊
Journal of Sandwich Structures & Materials
Journal of Sandwich Structures & Materials 工程技术-材料科学:表征与测试
CiteScore
9.60
自引率
2.60%
发文量
49
审稿时长
7 months
期刊介绍: The Journal of Sandwich Structures and Materials is an international peer reviewed journal that provides a means of communication to fellow engineers and scientists by providing an archival record of developments in the science, technology, and professional practices of sandwich construction throughout the world. This journal is a member of the Committee on Publication Ethics (COPE).
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