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Mechanical Properties Of Functionally Graded 2-d Cellular Structures: A Finite Element Simulation

机译:功能梯度二维蜂窝结构的力学性能:有限元模拟

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Functionally graded cellular structures such as bio-inspired functionally graded materials for manufacturing implants or bone replacement, are a class of materials with low densities and novel physical, mechanical, thermal, electrical and acoustic properties. A gradual increase in cell size distribution, can impart many improved properties which may not be achieved by having a uniform cellular structure.rnThe material properties of functionally graded cellular structures as a function of density gradient have not been previously addressed within the literature. In this study, the finite element method is used to investigate the compressive uniaxial and biaxial behavior of functionally graded Voronoi structures. Furthermore, the effect of missing cell walls on its overall mechanical (elastic, plastic, and creep) properties is investigated.rnThe finite element analysis showed that the overall effective elastic modulus and yield strength of structures increased by increasing the density gradient. However, the overall elastic modulus of functionally graded structures was more sensitive to density gradient than the overall yield strength. The study also showed that the functionally graded structures with different density gradient had similar sensitivity to random missing cell walls. Creep analysis suggested that the structures with higher density gradient had lower steady-state creep rate compared to that of structures with lower density gradient.
机译:功能梯度的细胞结构,例如用于制造植入物或骨替代物的生物启发功能梯度材料,是一类密度低,具有新颖的物理,机械,热,电和声学特性的材料。细胞大小分布的逐渐增加可以赋予许多改善的性能,而这些性能可能无法通过具有均匀的细胞结构来实现。功能性梯度细胞结构的材料性质作为密度梯度的函数尚未在文献中得到解决。在这项研究中,有限元方法被用来研究功能梯度Voronoi结构的单轴和双轴压缩特性。此外,研究了缺失的细胞壁对其整体机械(弹性,塑性和蠕变)性能的影响。有限元分析表明,结构的整体有效弹性模量和屈服强度通过增加密度梯度而增加。但是,功能梯度结构的总弹性模量比总屈服强度对密度梯度更敏感。研究还表明,具有不同密度梯度的功能梯度结构对随机缺失的细胞壁具有相似的敏感性。蠕变分析表明,与具有较低密度梯度的结构相比,具有较高密度梯度的结构的稳态蠕变速率较低。

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