Jhou Shu-Yu, Hsu Ching-Chi, Yeh Jui-Chia
Graduate Institute of Applied Science and Technology, National Taiwan University of Science and Technology, Taipei 106, Taiwan.
Department of Mechanical Engineering, National Taiwan University of Science and Technology, Taipei 106, Taiwan.
Polymers (Basel). 2021 Nov 21;13(22):4032. doi: 10.3390/polym13224032.
This paper proposes a dynamic drop weight impact simulation to predict the impact response of 3D printed polymeric sandwich structures using an explicit finite element (FE) approach. The lattice cores of sandwich structures were based on two unit cells, a body-centred cubic (BCC) and an edge-centred cubic (ECC). The deformation and the peak acceleration, referred to as the g-max score, were calculated to quantify their shock absorption characteristic. For the FE results verification, a falling mass impact test was conducted. The FE results were in good agreement with experimental measurements. The results suggested that the strut diameter, strut length, number and orientation, and the apparent material stiffness of the lattice cores had a significant effect on their deformation behavior and shock absorption capability. In addition, the BCC lattice core with a thinner strut diameter and low structural height might lead to poor shock absorption capability caused by structure collapse and border effect, which could be improved by increasing its apparent material stiffness. This dynamic drop impact simulation process could be applied across numerous industries such as footwear, sporting goods, personal protective equipment, packaging, or biomechanical implants.
本文提出了一种动态落锤冲击模拟方法,以使用显式有限元(FE)方法预测3D打印聚合物夹层结构的冲击响应。夹层结构的晶格芯基于两种单元胞,即体心立方(BCC)和边心立方(ECC)。计算了变形和峰值加速度(称为g-max分数),以量化它们的减震特性。为了验证有限元结果,进行了落锤冲击试验。有限元结果与实验测量结果吻合良好。结果表明,晶格芯的支柱直径、支柱长度、数量和取向以及表观材料刚度对其变形行为和减震能力有显著影响。此外,支柱直径较薄且结构高度较低的BCC晶格芯可能会因结构坍塌和边界效应而导致减震能力较差,这可以通过增加其表观材料刚度来改善。这种动态冲击模拟过程可应用于众多行业,如鞋类、体育用品、个人防护装备、包装或生物力学植入物。