首页> 美国卫生研究院文献>The Iowa Orthopaedic Journal >How Do Tissues Respond and Adapt to Stresses Around a Prosthesis? A Primer on Finite Element Stress Analysis for Orthopaedic Surgeons
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How Do Tissues Respond and Adapt to Stresses Around a Prosthesis? A Primer on Finite Element Stress Analysis for Orthopaedic Surgeons

机译:组织如何响应并适应假体周围的压力?骨科医师有限元应力分析入门

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摘要

Joint implant design clearly affects long-term outcome. While many implant designs have been empirically-based, finite element analysis has the potential to identify beneficial and deleterious features prior to clinical trials. Finite element analysis is a powerful analytic tool allowing computation of the stress and strain distribution throughout an implant construct. Whether it is useful depends upon many assumptions and details of the model. Since ultimate failure is related to biological factors in addition to mechanical, and since the mechanical causes of failure are related to load history, rather than a few loading conditions, chief among them is whether the stresses or strains under limited loading conditions relate to outcome. Newer approaches can minimize this and the many other model limitations. If the surgeon is to critically and properly interpret the results in scientific articles and sales literature, he or she must have a fundamental understanding of finite element analysis. We outline here the major capabilities of finite element analysis, as well as the assumptions and limitations.
机译:关节植入物设计显然会影响长期结果。尽管许多植入物设计都是基于经验的,但有限元分析具有在临床试验之前识别出有益和有害特征的潜力。有限元分析是一种功能强大的分析工具,可以计算整个植入物结构中的应力和应变分布。它是否有用取决于模型的许多假设和细节。由于最终的破坏不仅与机械因素有关,而且还与生物学因素有关,并且由于机械的破坏原因与载荷历史有关,而不是与少数载荷条件有关,所以其中的主要问题是在有限载荷条件下的应力或应变是否与结果有关。更新的方法可以最小化此限制以及许多其他模型限制。如果外科医生要对科学文章和销售文献中的结果进行批判和正确的解释,则他或她必须对有限元分析有基本的了解。我们在这里概述了有限元分析的主要功能,以及假设和局限性。

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