通过特定对象的有限元分析研究了柄设计参数对股骨假体周围骨折的影响

IF 2.3 4区 医学 Q3 ENGINEERING, BIOMEDICAL
N.S. Hennicke , D. Kluess , M. Sander
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引用次数: 0

摘要

由于假体周围股骨骨折(PFF)的数量不断增加,植入物设计的优化变得越来越重要。在所提出的研究中,使用了一个经过验证的、针对特定对象的有限元模型,该模型用于比较不同几何植入参数对PFF发展的影响。异质性骨组织是在计算机断层扫描的基础上建模的。采用单元缺失的韧性损伤模型来模拟载荷情况下的骨折,重现了一个跌跌撞撞的场景。将结果从骨折载荷、下沉和骨折模式进行比较,以分析植入物-骨界面摩擦、植入物尺寸和柄长的影响。结果表明,摩擦系数越大,断裂载荷越大。此外,使用尺寸过大的植入物的效果可以忽略不计,而尺寸过小的植入物可将所研究股骨的骨折负荷降低48.9%。最后,细长的股骨柄达到了更高的骨折负荷,但弯曲和骨折路径的变化表明股骨近端有更多的远端力传递和随后的应力屏蔽。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of stem design parameters on periprosthetic femoral fractures examined by subject specific finite element analyses

Due to the increasing number of periprosthetic femoral fractures (PFF), the optimisation of implant design gains importance. For the presented research a validated, subject specific finite element model of a human femur with an inlying total hip stem was used to compare the influence of different geometrical implant parameters on the development of PFF. The heterogeneous bone tissue was modelled on the basis of computed tomography scans. A ductile damage model with element deletion was applied to simulate bone fracture in a load case re-enacting a stumbling scenario. The results were compared in terms of fracture load, subsidence and fracture pattern to analyse the influence of friction at the implant-bone interface, implant size and stem length. The results showed that higher friction coefficients lead to an increase of fracture load. Also, the usage of an oversized implant has a negligible effect while an undersized implant reduces the fracture load by 48.9% for the investigated femur. Lastly, a higher fracture load was reached with an elongated stem, but the bending and change in fracture path indicate a more distal force transmission and subsequent stress shielding in the proximal femur.

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来源期刊
Medical Engineering & Physics
Medical Engineering & Physics 工程技术-工程:生物医学
CiteScore
4.30
自引率
4.50%
发文量
172
审稿时长
3.0 months
期刊介绍: Medical Engineering & Physics provides a forum for the publication of the latest developments in biomedical engineering, and reflects the essential multidisciplinary nature of the subject. The journal publishes in-depth critical reviews, scientific papers and technical notes. Our focus encompasses the application of the basic principles of physics and engineering to the development of medical devices and technology, with the ultimate aim of producing improvements in the quality of health care.Topics covered include biomechanics, biomaterials, mechanobiology, rehabilitation engineering, biomedical signal processing and medical device development. Medical Engineering & Physics aims to keep both engineers and clinicians abreast of the latest applications of technology to health care.
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