髋关节假体的应力分析研究

Chetan Mohanlal Wani, S. R. Deshmukh, Ratnakar R. Ghorpade
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引用次数: 1

摘要

生物医学工程通过应用原理和解决问题的技术,已经成为许多生物学问题的解决方案。心脏起搏器、人工骨替代物、3d打印器官和牙齿替代物是工程在生物医学领域应用的非常常见的例子。在医疗应用中,当患有关节炎的患者需要进行骨置换时,髋关节置换是不可避免的。人工髋关节的使用越来越普遍,在关节炎的情况下已经成为一种需要。人工髋关节植入物对于在失败部位提供初始稳定性至关重要。在这一领域的比较研究是有限的,需要深入研究。本文主要对SS(不锈钢)和Ti6Al4V(钛合金)髋关节置换术假体进行比较研究。本研究通过施加定向载荷对髋关节置换术假体进行三维有限元分析(使用ANSYS2020),检测假体的非mises应力量、应力位置和变形。对髋关节置换术假体的组装进行建模(使用Fusion 360),并分别使用两种不同的材料(SS和Ti-6Al-4V)对股骨干进行静态结构分析,分别使用HDPE和HDPE/0.25MWCNT/0.15对髋臼杯和衬套进行静态结构分析。边界条件和施加的载荷不变,而不同的参数是种植体的颈部角度和使用的材料。利用该模型分别对三种不同壳体倾角下的高架衬板和平面衬板进行了类似的静力结构分析,得到了较好的结果。本研究将有助于研究人员对髋关节假体的应力分析进行进一步的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Studies on Stress Analysis of Hip Prosthesis Implant
: Biomedical engineering has become a solution for many biological problems by the application of principles and problem-solving techniques. Pacemakers, artificial bone replacements, 3-D printed organs, and dental replacements are very common examples of an application of engineering in the biomedical field. In medical applications when there is a need for bone replacement in a patient who is suffering from arthritis, the hip joint replacement cannot be avoided. The use of the artificial hip joint is going more popular and has become a need in the case of arthritis. An artificial hip implant is essential for providing initial stability at the place of failure. The comparative study in this field is limited and needs to be studied thoroughly. This paper focuses on a comparative study of hip replacement implants using SS (stainless steel) and Ti6Al4V (titanium alloy). In this study, 3-dimensional finite element analysis (using ANSYS2020) of hip replacement implant is performed by applying directional loads to detect von-mises stress amount, stress locations, and deformation in the implant. Assembly of the hip replacement implant is modeled (using Fusion 360) and static structural analysis is separately done using two different materials (SS and Ti-6Al-4V) for the femoral stem and using HDPE and HDPE/0.25MWCNT/0.15 for acetabular cup and liners respectively. Boundary conditions and loads applied are unchanged while varying parameters are the neck angle of implant and materials used. A similar static structural analysis for the elevated liner and flat liner at three different shell inclinations is done separately using the model which has shown better results. This study will help the researchers for further study on stress analysis of hip prosthesis implants.
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