Modeling Three-Dimensional-Printed Polymer Lattice Metamaterial Recovery After Cyclic Large Deformation

Siqi Wu, Erol Sancaktar
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Abstract

Lattice structure metamaterials generally exhibit better stiffness and/or tunable properties than natural materials. They have important applications in mechatronics and tissue engineering areas. In this work, we demonstrate crystal structure-inspired body-centered cubic (BCC)-lattice architected structures using different acrylate-based polymer materials to study the mechanical response in large deformation. Rigid BCC lattice metamaterials manifest outstanding recovery properties after undergoing multi-cycle compression. With appropriate cell wall thickness, the lattices have the capacity to recover their original shape and maintain a degree of stiffness. In further exploration, we combined mechanical tests and digital image correlation to elaborate on the deformation mechanisms. The digital image correlation (DIC) proves that displacement discrepancy exists in local positions. We propose hourglass and twist models to describe the buckling-induced pattern transformation which occurs during cyclic compressive deformation using simulation.
三维打印聚合物晶格超材料循环大变形后的恢复建模
晶格结构的超材料通常表现出比天然材料更好的刚度和/或可调特性。它们在机电一体化和组织工程领域有着重要的应用。在这项工作中,我们使用不同的丙烯酸酯基聚合物材料展示了晶体结构启发的体心立方(BCC)晶格结构,以研究大变形时的机械响应。刚性BCC晶格超材料在多次循环压缩后表现出优异的恢复性能。在适当的细胞壁厚度下,晶格有能力恢复其原始形状并保持一定程度的刚度。在进一步的探索中,我们结合力学试验和数字图像相关来阐述变形机理。数字图像相关(DIC)证明了局部位置存在位移差异。我们提出了沙漏模型和扭曲模型来描述在循环压缩变形过程中发生的屈曲模式转换。
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