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The relationships between deformation mechanisms and mechanical properties of additively manufactured porous biomaterials

机译:含有多孔多孔生物材料的变形机制与机械性能的关系

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摘要

Modulating deformation mechanism through manipulating morphological parameters of scaffold internal pore architecture provides potential to tailor the overall mechanical properties under physiological loadings. Whereas cells sense local strains, cell differentiation is also impressed by the elastic deformations. In this paper, structure-property relations were developed for Ti6-Al-4V scaffolds designed based on triply periodic minimal surfaces. 10 mm cubic scaffolds composed of 5 x 5 x 5 unit cells formed of F-RD (bending dominated) and I-WP (stretching dominated) architectures were additively manufactured at different volume fractions and subjected to compressive tests. The first stages of deformation for stretching dominated structure, was accompanied by bilateral layer-by layer failure of unit cells owing to the buckling of micro-struts, while for bending dominated structure, namely F-RD, global shearing bands appeared since the shearing failure of struts in the internal architecture. Promoted mechanical properties were found for stretching dominated structure since the global orientation of struts were parallel to loading direction while inclination of struts diminished specific properties for bending dominated structure. Moreover, elastic plastic deformation was computationally studied by applying Johnson-Cook damage model to the voxel-based models in FE analysis. Scaling analysis was performed for mechanical properties with respect to the relative density thereby failure mechanism was correlated to the constants of power law describing mechanical properties. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过操纵脚手架内部孔建筑的形态参数调节变形机制,提供了在生理载荷下量身定制的整体机械性能。而细胞感测局部菌株,细胞分化也被弹性变形印象深刻。在本文中,为基于三个周期性最小表面设计的Ti6-Al-4V支架而开发了结构性质关系。由5×5×5组成的10mm立方支架组成,由F-Rd(弯曲支配)和I-WP(拉伸支配)架构形成,在不同的体积分数上加质地制造并进行压缩试验。用于拉伸占主导地位的拉伸结构的第一阶段,由于微支柱的屈曲,由于微支柱的屈曲,即用于弯曲主导的结构,即F-RD,自剪切失败以来出现了全球剪切带的同时伴随着单位电池的双侧衰竭。在内部建筑中的支柱。发现促进的机械性能用于拉伸主导结构,因为支柱的全局取向平行于装载方向,同时支柱的倾斜度降低了弯曲主导结构的特异性特性。此外,通过将Johnson-Cook损伤模型应用于Fe分析中的体素的模型来计算弹性塑性变形。对相对于相对密度的机械性能进行缩放分析,从而失效机构与描述机械性能的幂律的常数相关。 (c)2016 Elsevier Ltd.保留所有权利。

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