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首页> 外文期刊>Mechanics of materials >Effect of microstructural configurations on the mechanical responses of porous titanium: A numerical design of experiment analysis for orthopedic applications
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Effect of microstructural configurations on the mechanical responses of porous titanium: A numerical design of experiment analysis for orthopedic applications

机译:微观结构构型对多孔钛力学响应的影响:骨科应用实验分析的数值设计

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摘要

The reduced stiffness, weight and open porosity of microporous titanium makes it an attractive material possibility for engineering applications ranging from medical implants to impact tolerant structures. To facilitate the design and application of this material, it is necessary to develop an understanding of the relationship between the porous microstruc-ture and mechanical responses of the material. A factorial design of experiment methodology (DOE) is therefore used to systematically compare the effects that several microstructural features have on the mechanical responses via 2D and 3D finite element (FE) simulations. The FE models for the DOE study are all based on a titanium matrix of 12% porosity and the application to orthopedic implants. Five microstructural features are varied to create 32 test cases to study the effects of pore shape, size, orientation, and arrangement, and bone infiltration. The quantitative effects of the features are used to screen their relative importance for elastic modulus, yield stress, and stress concentration factor. The results of the DOE studies of both 2D and 3D numerical simulations demonstrate that bone infiltration into the pores is the most dominant factor for elastic modulus and yield stress. A random arrangement of pores has great effect on local stress concentrations where the local stress fields are primarily concentrated in the regions around closely spaced pores. Bone infiltration greatly reduces the stress concentration in such regions indicating an advantage of bone ingrowth beyond improved interface and attachment. Compared to bone infiltration and pore arrangement and orientation, relative pore size and shape have relatively small effect on the mechanical responses.
机译:微孔钛的降低的刚度,重量和开孔率使其成为从医学植入物到耐冲击结构的工程应用中有吸引力的材料可能性。为了促进这种材料的设计和应用,有必要加深对多孔微结构与材料机械响应之间关系的理解。因此,通过2D和3D有限元(FE)模拟,采用了实验方法(DOE)的析因设计来系统地比较几种微结构特征对机械响应的影响。 DOE研究的有限元模型均基于孔隙度为12%的钛基体,并应用于骨科植入物。改变了五个微结构特征以创建32个测试用例,以研究孔的形状,大小,方向和排列以及骨渗透的影响。这些特征的量化效果用于筛选它们对于弹性模量,屈服应力和应力集中系数的相对重要性。 2D和3D数值模拟的DOE研究结果表明,骨渗透到孔中是弹性模量和屈服应力的最主要因素。孔的随机排列对局部应力集中有很大的影响,其中局部应力场主要集中在紧密间隔的孔周围的区域中。骨浸润极大地降低了此类区域的应力集中,表明除了向内接合和附着改善之外,骨向内生长的优势。与骨渗透和孔排列和方向相比,相对的孔尺寸和形状对机械响应的影响相对较小。

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