A Computational Framework for Investigating the Mechanical Stresses on Breast Implants Under Dynamic Loading Conditions.

IF 5.4 2区 医学 Q3 ENGINEERING, BIOMEDICAL
Seungkwan Lee, Ju Yeon Park, Sinwoo Park, Jung-Ju Kim, Il-Seok Jang, Ju-Dong Song, Do-Nyun Kim
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Abstract

The durability and safety of silicone breast implants remain critical concerns due to risk of rupture under long-term and dynamic loading conditions. To address these challenges, this study introduces a Finite Element Analysis (FEA)-based approach to investigate the mechanical behavior of breast implant shells under simulated clinical conditions, including compressive loading and dynamic movements such as walking. The material properties of the implant components in the computational model were characterized through an optimization process integrating 3D scan data and simulation results. Two primary loading scenarios were modeled and analyzed: compressive forces from external pressure like physical manipulation or impact, and dynamic forces induced by walking, representing typical daily activities. Simulation results identified areas of high stress concentration on implant shells, corresponding to clinically observed rupture locations. Specifically, compressive loading simulations revealed high von Mises stress levels, while walking simulations demonstrated periodic stress fluctuations after the initial transient phase, highlighting fatigue-related risks in specific regions of the implant shell. Despite limitations, such as simplified material models and generic body geometries, this study provides a robust framework for analyzing implant performance under realistic conditions. These findings offer valuable insights for improving implant design and durability, paving the way for safer, patient-specific solutions.

动态加载条件下乳房植入物机械应力研究的计算框架。
由于硅胶乳房植入物在长期和动态载荷条件下存在破裂的风险,因此其耐久性和安全性仍然是人们关注的关键问题。为了解决这些挑战,本研究引入了一种基于有限元分析(FEA)的方法来研究乳房植入物外壳在模拟临床条件下的力学行为,包括压缩载荷和动态运动(如行走)。通过将三维扫描数据与仿真结果相结合的优化过程,表征了计算模型中植入体部件的材料特性。模拟和分析了两种主要的加载情景:来自物理操作或冲击等外部压力的压缩力,以及由步行引起的动态力,代表典型的日常活动。模拟结果确定了种植体外壳上高应力集中的区域,与临床观察到的破裂位置相对应。具体来说,压缩加载模拟显示了较高的von Mises应力水平,而行走模拟显示了初始瞬态阶段后的周期性应力波动,突出了植入体外壳特定区域的疲劳相关风险。尽管存在一些限制,如简化的材料模型和通用的体几何形状,但本研究为分析现实条件下种植体的性能提供了一个强大的框架。这些发现为改进种植体设计和耐用性提供了有价值的见解,为更安全、针对患者的解决方案铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annals of Biomedical Engineering
Annals of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
7.50
自引率
15.80%
发文量
212
审稿时长
3 months
期刊介绍: Annals of Biomedical Engineering is an official journal of the Biomedical Engineering Society, publishing original articles in the major fields of bioengineering and biomedical engineering. The Annals is an interdisciplinary and international journal with the aim to highlight integrated approaches to the solutions of biological and biomedical problems.
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