Low elastic modulus and highly porous triply periodic minimal surfaces architectured implant for orthopedic applications

小旋翼机 应力屏蔽 材料科学 多孔性 弹性模量 模数 复合材料 最小曲面 电磁屏蔽 钛合金 剪切模量 植入 合金 几何学 数学 外科 医学 共聚物 聚合物
作者
Rati Verma,Jitendra Kumar,Nishant Singh,Sanjay Kumar,Shekhar Madhukar Kumta,Shankar Sehgal,Kuldeep K. Saxena
出处
期刊:Proceedings Of The Institution Of Mechanical Engineers, Part E: Journal Of Process Mechanical Engineering [SAGE Publishing]
卷期号:: 095440892211112-095440892211112 被引量:4
标识
DOI:10.1177/09544089221111258
摘要

A mismatch between the implant and interacting bone Young's modulus causes stress shielding phenomena, which leads to instability of the implant and early failure. This paper focuses on the development of medical-grade titanium alloy (Ti6Al4V)-based metallic highly porous structure to mitigate the stress shielding effect. In this study, we propose an effective method to generate a highly porous implant based on triply periodic minimal surfaces (TPMS) architecture. Three-dimensional models of different TPMS architectures such as Diamond, Gyroid, I-graph-Wrapped Package graph (IWP), and Primitive were constructed with a 2 × 2 × 2 mm lattice size and unit cell size of 1 mm. Mechanical testing of the finite-element models was performed under static loading conditions to evaluate the effective elastic modulus ( E eff ) of each porous architecture. It was found that the primitive structure exhibits the lowest E eff , whereas the Gyroid exhibits the highest E eff , results indicate that porous architecture reduces E eff by more than 95%, thereby reducing the stress shielding effect. Moreover, pore size and surface-area-to-volume ratio (SA/V ratio) were also investigated. Findings suggested that the primitive structure has the highest pore size, which will be suitable for enhanced bone ingrowth. A high SA/V ratio in IWP offers the possibility of enhanced cell adhesion, migration, and proliferation.
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