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Design, optimization, and validation of mechanical properties of different cellular structures for biomedical application

机译:生物医学应用不同蜂窝结构力学性能的设计,优化和验证

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Cellular structures are promising applicants for additive manufacturing (AM), due to their best capabilities over solid ones such as high strength-to-weight ratio, having porosity, and light in weight. New vintile cellular structures and with the existing five different cellular structures namely cubic, tetrahedron, hexagon, octagon, and rhombic dodecahedron were designed and the effect of unit size, lattice topology, porosity, and optimization of cellular structures on the mechanical properties were discussed in this study. Eighty-four samples with different cell sizes, lattice topologies, and porosities were printed using VisiJet M3 Crystal material on Projet 3510 HDMax 3D printer. Then, electro-optical microscopic is used to determine the pore size. Based on predesigned cellular structures, finite element analysis (FEA) and experimental work were performed to estimate and evaluate the mechanical properties of cellular structures. Results shown that the cellular structure with vintile lattice topology performs less stress and less deformation than the other cellular structures. The experiment results were in good conformance with the result obtained from simulation. This study is not only limited to cellular structure design for biomedical applications but also compared the mechanical performance of uniform density and variable density cellular structures. Both non-optimized and optimized vintile cellular structures is finally tested with FEA and experiments have been carried out on samples fabricated by material jetting, and both results have shown that the optimized cellular structure had much less stress and lower deformation than the non-optimized cellular structure.
机译:蜂窝结构是具有添加剂制造(AM)的申请人,由于它们的最佳能力,其具有诸如高强度重量比,具有孔隙率和重量的光。设计了新的Vintile蜂窝结构和现有的五种不同的细胞结构即立方,四面体,六边形,八角形和菱形十二锭,并讨论了单位尺寸,晶格拓扑,孔隙率和对机械性能的优化的影响这项研究。使用Visijet M3晶体材料在Projet 3510 HDMAX 3D打印机上打印八十四个具有不同电池尺寸,晶格拓扑和孔隙座的样本。然后,使用电光显微镜来确定孔径。基于预测的细胞结构,进行有限元分析(FEA)和实验工作来估计和评估细胞结构的机械性能。结果表明,具有Vintile晶格拓扑的蜂窝结构比其他细胞结构更小的应力和更少的变形。实验结果与模拟中获得的结果良好。该研究不仅限于生物医学应用的蜂窝结构设计,而且还限于均匀密度和可变密度细胞结构的机械性能。最终用FEA测试未优化和优化的Vintile细胞结构,并且在材料喷射制造的样品上进行了实验,并且两种结果表明,优化的细胞结构比未优化的细胞更低的压力和更低的变形。结构体。

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