均质化(气候)
应力屏蔽
材料科学
小旋翼机
刚度
复合材料
结构材料
模数
结构工程
生物医学工程
植入
工程类
聚合物
医学
生物多样性
生态学
外科
共聚物
生物
作者
Ana Pais,Jorge Lino Alves,R.M. Natal Jorge,J. Belinha
出处
期刊:Bioengineering
[Multidisciplinary Digital Publishing Institute]
日期:2023-04-25
卷期号:10 (5): 515-515
被引量:2
标识
DOI:10.3390/bioengineering10050515
摘要
Multiscale techniques, namely homogenization, result in significant computational time savings in the analysis of complex structures such as lattice structures, as in many cases it is inefficient to model a periodic structure in full detail in its entire domain. The elastic and plastic properties of two TPMS-based cellular structures, the gyroid, and the primitive surface are studied in this work through numerical homogenization. The study enabled the development of material laws for the homogenized Young's modulus and homogenized yield stress, which correlated well with experimental data from the literature. It is possible to use the developed material laws to run optimization analyses and develop optimized functionally graded structures for structural applications or reduced stress shielding in bio-applications. Thus, this work presents a study case of a functionally graded optimized femoral stem where it was shown that the porous femoral stem built with Ti-6Al-4V can minimize stress shielding while maintaining the necessary load-bearing capacity. It was shown that the stiffness of cementless femoral stem implant with a graded gyroid foam presents stiffness that is comparable to that of trabecular bone. Moreover, the maximum stress in the implant is lower than the maximum stress in trabecular bone.
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