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Finite element modelling of the compressive response of lattice structures manufactured using the selective laser melting technique

机译:使用选择性激光熔化技术制造的晶格结构压缩响应的有限元建模

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Previous work on lightweight energy-absorbing truss based structures has highlighted the potential of SLM-built lattices. Finite element models have been developed to predict the compressive response of lattice structures based on two simple architectures - a body-centred cubic structure (BCC) and a similar structure with vertical pillars (BCC-Z). Both 3D continuum and beam elements have been used to model the structures under quasi-static compressive loads. Key difficulties in modelling the lattice structures have been highlighted and possible solutions have been offered. The results from the FE models are compared to experimental data and have been shown to agree well. The collapse modes predicted by the FE models were also in agreement with the experimental observations. The stress distribution within the BCC unit cells at increasing levels of crush has been identified and shows the formation of plastic hinges in the struts near to the nodal regions. In the latter stages of this investigation, the unit cell geometry was modified in order to enhance the stiffness and yield stress under compressive loading conditions. Predictions made using both analytical and beam element FE models demonstrate that the stiffness and yield strength could be improved by varying the unit cell geometry. Further tests were carried out on modified lattice structures to verify the predictions.
机译:先前有关基于轻型能量吸收桁架的结构的工作强调了SLM建造的网格的潜力。已经开发了有限元模型来预测基于两种简单架构的晶格结构的压缩响应-体心立方结构(BCC)和具有垂直支柱的类似结构(BCC-Z)。 3D连续体和梁单元都已用于对准静态压缩载荷下的结构进行建模。已经强调了建模晶格结构的关键困难,并提供了可能的解决方案。有限元模型的结果与实验数据进行了比较,并显示出很好的一致性。有限元模型预测的坍塌模式也与实验观察一致。已经发现,在压碎程度不断增加的情况下,BCC晶胞内的应力分布情况表明,在节点附近的支杆中形成了塑料铰链。在本研究的后期,修改了晶胞的几何形状,以增强在压缩载荷条件下的刚度和屈服应力。使用分析和梁单元有限元模型进行的预测表明,通过改变晶胞几何形状可以提高刚度和屈服强度。在修改后的晶格结构上进行了进一步的测试,以验证预测结果。

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