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首页> 外文期刊>International Journal of Mechanical Sciences >Damage characterizations and simulation of selective laser melting fabricated 3D re-entrant lattices based on in-situ CT testing and geometric reconstruction
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Damage characterizations and simulation of selective laser melting fabricated 3D re-entrant lattices based on in-situ CT testing and geometric reconstruction

机译:基于原位CT测试和几何重建的选择性激光熔化的损伤表征和仿真制造的3D再参赛者格子

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摘要

In recent years, metal additive manufacturing (AM) are widely employed for industrial applications, such as: biomedical, aerospace, automotive, marine and offshore sections. AM demonstrated superior manufacturing efficiencies and economic advantages for advanced lightweight industrial components with unlimited arbitrary topological layouts and complex internal microstructures, and are also employed for fabrication of auxetic materials and structures. In this paper, damage characterizations and mechanical behaviors of selective laser melting (SLM) fabricated 3D re-entrant lattices are investigated based on in-situ interrupted micro-CT test, and simulation based on geometric reconstructed models are performed for exploring the underlying failure mechanisms. Firstly, theoretical models for predicting the mechanical properties of 3D re-entrant lattice are developed, such as stiffness, Poisson's ratio and strength, etc. Secondly, the geometrical errors and fabrication defects of 3D reentrant lattices are analyzed based on 3D micro-CT scanning, in-situ micro-CT interrupted compression tests are performed for studying the deformation process and failure mechanisms. Finally, image finite element models with the detailed information of the shape, position and distribution of defects of the 3D reentrant lattices are constructed from 3D tomographic images, and numerical simulations are performed for studying the effects of the defects on the mechanical performances of the SLM additive manufactured 3D re-entrant lattice structures. It is shown that the failure behavior of the reentrant lattice is governed not only by its topology, but also by the geometric defects and surface defects. Moreover, the proposed interrupted in-situ micro-CT mechanical loading experiments and image finite element approaches can also shed lights on the relations between fracture failure around the edge and the powder adhesion. The damage evolution process is compared with the numerical simulation results to verify the materials failure modes.
机译:近年来,金属添加剂制造业(AM)广泛用于工业应用,例如:生物医学,航空航天,汽车,海洋和近海部分。我展示了具有无限的任意拓扑布局和复杂的内部微观结构的先进轻质工业部件的优越的制造效率和经济优势,也用于制造辅助材料和结构。在本文中,基于原位中断的微型CT测试研究了选择性激光熔化(SLM)制造的3D再参赛者格子的损伤表征和机械行为,并对基于几何重建模型进行仿真以探索潜在的故障机制。首先,开发了用于预测3D再参赛者格式的机械性能的理论模型,例如刚度,泊松比和强度等。其次,基于3D微型CT扫描分析了3D回应格子的几何误差和制造缺陷,进行原位微CT中断的压缩测试,用于研究变形过程和故障机制。最后,图像有限元模型与3D转换格子的形状,位置和分布的详细信息的图像有限元模型由3D断层图像构成,并且对研究缺陷对SLM的机械性能的影响进行了数值模拟添加剂制造的3D再参赛者格子结构。结果表明,重圈格子的故障行为不仅受其拓扑结构而且由几何缺陷和表面缺陷的控制。此外,所提出的中断的原位微型CT机械加载实验和图像有限元方法也可以在边缘周围的断裂破坏和粉末粘附之间的关系上脱落。将损坏进化过程与数值模拟结果进行比较,以验证材料故障模式。

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