Multiscale Design and Multiobjective Optimization of Orthopedic Hip Implants with Functionally Graded Cellular Material

被引:4
|
作者
Khanoki, Sajad Arabnejad [1 ]
Pasini, Damiano [1 ]
机构
[1] McGill Univ, Dept Mech Engn, Montreal, PQ H3A 0C3, Canada
关键词
total hip replacement; cellular microstructure; lattice material; finite element method; asymptotic homogenization; multiobjective optimization; TOPOLOGY OPTIMIZATION; MECHANICAL-PROPERTIES; FOLLOW-UP; HOMOGENIZATION METHOD; PRIMARY STABILITY; PART II; BONE; TISSUE; STEM; ARTHROPLASTY;
D O I
10.1115/1.4006115
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Revision surgeries of total hip arthroplasty are often caused by a deficient structural compatibility of the implant. Two main culprits, among others, are bone-implant interface instability and bone resorption. To address these issues, in this paper we propose a novel type of implant, which, in contrast to current hip replacement implants made of either a fully solid or a foam material, consists of a lattice microstructure with nonhomogeneous distribution of material properties. A methodology based on multiscale mechanics and design optimization is introduced to synthesize a graded cellular implant that can minimize concurrently bone resorption and implant interface failure. The procedure is applied to the design of a 2D left implanted femur with optimized gradients of relative density. To assess the manufacturability of the graded cellular microstructure, a proof-of-concept is fabricated by using rapid prototyping. The results from the analysis are used to compare the optimized cellular implant with a fully dense titanium implant and a homogeneous foam implant with a relative density of 50%. The bone resorption and the maximum value of interface stress of the cellular implant are found to be over 70% and 50% less than the titanium implant while being 53% and 65% less than the foam implant. [DOI: 10.1115/1.4006115]
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页数:10
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