三维辅助重入式 LPBF 制造钢桁架晶格材料的机械响应和失效模式

Thomas Vitalis, Andrew J. Gross, S. Gerasimidis
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摘要

由于其在承受轴向压缩载荷时具有独特的横向收缩和致密化能力,磁性结构材料是一类具有可调机械特性和高能量吸收能力的新型耐损伤材料。目前对负泊松比材料的研究主要集中在二维几何结构和少数三维几何结构系列,对不同结构和各种几何特征的实验比较十分有限。此外,当通过激光粉末床熔融制造时,由于熔池凝固过程对薄特征的固有影响,几何和材料特性的竣工偏差对金属结构材料的影响相对来说还没有被探索。作者旨在研究钢制辅助桁架晶格承受轴向压缩时的弹性特性、峰值特征和失效模式,同时解决金属激光粉末床熔融快速成型技术中建筑材料固有的不确定性问题。本研究通过实验和计算探索并比较了两个具有良好前景的低相对密度三维辅助桁架晶格系列。本文介绍了对金属负泊松比机械超材料的全面研究,包括架构选择、建模、激光粉末床熔融快速成型制造、竣工部件表征、材料测试和轴向压缩下的机械测试。对这种结构的研究可以释放它们的潜力,使它们能够随时适应各种工程应用。
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Mechanical response and failure modes of three-dimensional auxetic re-entrant LPBF-manufactured steel truss lattice materials
Auxetic architected materials present a novel class of damage-tolerant materials with tunable mechanical characteristics and high energy absorption due to their unique ability to laterally contract and densify when subjected to axial compressive loading. The current state of research on negative Poisson's ratio materials mainly focuses on 2D geometries and a few families of 3D geometries with limited experimental comparisons between different architectures and various geometrical features. Furthermore, when manufactured via laser powder bed fusion, the influence of as-built deviations of geometrical and material properties inherently present due to the melt pool solidification process for thin features is relatively unexplored in the case of metal architected materials. The authors aim to study the elastic properties, peak characteristics, and failure modes of steel auxetic truss lattices subjected to axial compression while also addressing the uncertainties inherent to the metal laser powder bed fusion additive manufacturing of architected materials. This work presents an experimental and computational exploration and comparison of two promising three-dimensional auxetic truss lattice families of low relative densities. A comprehensive investigation of metal negative Poisson's ratio mechanical metamaterials is presented, including the selection of the architectures, modeling, laser powder bed fusion additive manufacturing, as-built part characterization, material testing, and mechanical testing under axial compression. The study of such architectures can unlock their potential in making them readily adaptable to a wide variety of engineering applications.
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