Optimizing functionally graded tibial components for total knee replacements: a finite element analysis and multi-objective optimization study.

IF 1.6 4区 医学 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Mohaddeseh Fatemi, Zohreh Bahrami, Marjan Bahraminasab, Farideh Nabizadeh Chianeh
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Abstract

The optimal design of complex engineering systems requires tracing precise mathematical modeling of the system's behavior as a function of a set of design variables to achieve the desired design. Despite the success of current tibial components of knee implants, the limited lifespan remains the main concern of these complex systems. The mismatch between the properties of engineered biomaterials and those of biological materials leads to inadequate bonding with bone and the stress-shielding effect. Exploiting a functionally graded material for the stem of the tibial component of knee implants is attractive because the properties can be designed to vary in a certain pattern, meeting the desired requirements at different regions of the knee joint system. Therefore, in this study, a Ti6Al4V/Hydroxyapatite functionally graded stem with a laminated structure underwent simulation-based multi-objective design optimization for a tibial component of the knee implant. Employing finite element analysis and response surface methodology, three material design variables (stem's central diameter, gradient factor, and number of layers) were optimized for seven objective functions related to stress-shielding and micro-motion (including Maximum stress on the cancellous bone, maximum and mean stresses on predefined paths, the standard deviation of mean stress on paths, maximum and mean micro-motions at the bone-implant interface and the standard deviation of mean micro-motion). Then, the optimized functionally graded stem with 6 layers, a central diameter of 5.59 mm, and a gradient factor of 1.31, was compared with a Ti6Al4V stem for various responses. In stress analysis, the optimal stem demonstrated a 1.92% improvement in cancellous bone stress while it had no considerable influence on the maximum, mean, and standard deviation of stresses on paths. In micro-motion analysis, the maximum, mean, and standard deviation of mean micro-motion at the interface were enhanced by 24.31%, 39.53%, and 19.77%, respectively.

优化全膝关节置换术的功能分级胫骨组件:有限元分析和多目标优化研究。
复杂工程系统的优化设计需要对系统行为作为一组设计变量的函数进行精确的数学建模,以实现理想的设计。尽管目前膝关节植入物的胫骨组件取得了成功,但有限的使用寿命仍然是这些复杂系统的主要问题。工程生物材料的特性与生物材料的特性不匹配,导致其与骨骼的结合力和应力屏蔽效应不足。利用功能分级材料作为膝关节植入物胫骨部分的骨干具有吸引力,因为这种材料的特性可以设计成一定的变化模式,满足膝关节系统不同区域的预期要求。因此,在本研究中,对具有层状结构的 Ti6Al4V/羟基磷灰石功能分级柄进行了基于仿真的多目标优化设计,用于膝关节植入物的胫骨组件。利用有限元分析和响应面方法,针对与应力屏蔽和微动有关的七个目标函数(包括松质骨上的最大应力、预定路径上的最大应力和平均应力、路径上平均应力的标准偏差、骨-植入物界面上的最大微动和平均微动以及平均微动的标准偏差),对三个材料设计变量(柄的中心直径、梯度因子和层数)进行了优化。然后,将 6 层、中心直径为 5.59 毫米、梯度因子为 1.31 的优化功能分级骨干与 Ti6Al4V 骨干进行各种反应比较。在应力分析中,最佳骨干对松质骨应力的改善幅度为 1.92%,而对路径上应力的最大值、平均值和标准偏差没有显著影响。在微动分析中,界面处平均微动的最大值、平均值和标准偏差分别提高了 24.31%、39.53% 和 19.77%。
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来源期刊
CiteScore
4.10
自引率
6.20%
发文量
179
审稿时长
4-8 weeks
期刊介绍: The primary aims of Computer Methods in Biomechanics and Biomedical Engineering are to provide a means of communicating the advances being made in the areas of biomechanics and biomedical engineering and to stimulate interest in the continually emerging computer based technologies which are being applied in these multidisciplinary subjects. Computer Methods in Biomechanics and Biomedical Engineering will also provide a focus for the importance of integrating the disciplines of engineering with medical technology and clinical expertise. Such integration will have a major impact on health care in the future.
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