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Finite element simulation of the compressive response of additively manufactured lattice structures with large diameters

机译:具有大直径的加粘性晶格结构的压缩响应的有限元模拟

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This study focuses on the use of beam element based finite element models to predict the compressive response of 316L stainless steel lattice structure with a body center cubic (BCC) topology. A methodology is developed to compensate for the inadequate stiffness in the joint regions of the beam element model. Numerical results from the modified beam element model agreed well with the corresponding solid model results for all the three diameters under compressive response, including where the strut aspect ratio (diameter/length) was greater than 0.2. A series of lattice specimens was built, and compressive experiments were conducted. As a result, simulation results of the stress-strain curve and deformation modes using both the three-dimensional continuum and the beam element model with identified material parameters for all three different diameters had a good consistency with experimental data under quasi-static compressive loads. The developed beam element-based FEM model can contribute to more effective computation of the lattice embedded structure performance than the solid element based model due to its lower computational cost.
机译:本研究侧重于使用基于梁元件的有限元模型来预测316L不锈钢晶格结构与体中心立方(BCC)拓扑的压缩响应。开发了一种方法来补偿梁元件模型的关节区域中的不充分刚度。改性光束元件模型的数值结果与压缩响应下的所有三个直径的相应固体模型相同,包括支柱纵横比(直径/长度)大于0.2。建造了一系列格子标本,并进行了压缩实验。结果,使用三维连续轴和梁元件模型的应力 - 应变曲线和变形模式的模拟结果与所有三个不同直径的识别材料参数具有良好的一致性,与准静态压缩载荷下的实验数据良好。由于其计算成本较低,基于光束元件的FEM模型可以有助于比基于固体元素的模型更有效地计算格子嵌入式结构性能。

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