不同载荷情况下股骨假体周围骨折的有限元建模

IF 3.5 2区 医学 Q2 ENGINEERING, BIOMEDICAL
N.S. Hennicke , M. Saemann , D. Kluess , R. Bader , M. Sander
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引用次数: 5

摘要

全髋关节置换术后股骨假体周围骨折(PFF)是骨科医生面临的最大挑战之一。为了了解这些骨折的危险因素和形成,开发一个可靠的包含骨衰竭的有限元(FE)模型是必不可少的。由于骨的各向异性和复杂的层次结构,大应变下的力学行为难以预测。在本研究中,一种最先进的受试者特定骨有限元建模技术被用于生成和研究PFF。将双线性本构法应用于五根人工直髋关节骨的骨组织有限元模型中,对其进行了数值分析。模型的材料参数表示为灰分密度的函数,并按节点映射到有限元网格上。通过这种方法,可以模拟受试者特定的异质骨结构。对于参数的材料映射,使用原始新鲜冷冻股骨的计算机断层扫描(CT)图像。基于临界塑性应变破坏准则,通过删除元素生成假体周围骨折。这些模型在生理和临床相关条件下进行了分析,在两种不同的负荷情况下再现了绊倒和髋部侧面摔倒。分析结果用以往工作的实验数据进行了量化。在断裂模式、刚度和破坏载荷方面,加载情况的模拟结果最稳定、最准确。一般来说,材料属性映射被认为是用有限元模型再现PFF的合适方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Subject specific finite element modelling of periprosthetic femoral fractures in different load cases

Subject specific finite element modelling of periprosthetic femoral fractures in different load cases

Periprosthetic femoral fractures (PFF) around total hip replacements are one of the biggest challenges for orthopaedic surgeons. To understand the risk factors and formation of these fractures, the development of a reliable finite element (FE) model incorporating bone failure is essential. Due to the anisotropic and complex hierarchical structure of bone, the mechanical behaviour under large strains is difficult to predict. In this study, a state-of-the-art subject specific FE modelling technique for bone is utilised to generate and investigate PFF. A bilinear constitutive law is applied to bone tissue in subject specific FE models of five human femurs which are virtually implanted with a straight hip stem to numerically analyse PFF. The material parameters of the models are expressed as a function of bone ash density and mapped node wise to the FE mesh. In this way the subject specific, heterogeneous structure of bone is mimicked. For material mapping of the parameters, computed tomography (CT) images of the original fresh-frozen femurs are used. Periprosthetic fractures are generated by deleting elements on the basis of a critical plastic strain failure criterion. The models are analysed under physiological and clinically relevant conditions in two different load cases re-enacting stumbling and a sideways fall on the hip. The results of the analyses are quantified with experimental data from previous work. With regard to fracture pattern, stiffness and failure load the simulations of the load case stumbling delivered the most stable and accurate results. In general, mapping of material properties was found to be an appropriate way to reproduce PFF with finite element models.

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来源期刊
Journal of the Mechanical Behavior of Biomedical Materials
Journal of the Mechanical Behavior of Biomedical Materials 工程技术-材料科学:生物材料
CiteScore
7.20
自引率
7.70%
发文量
505
审稿时长
46 days
期刊介绍: The Journal of the Mechanical Behavior of Biomedical Materials is concerned with the mechanical deformation, damage and failure under applied forces, of biological material (at the tissue, cellular and molecular levels) and of biomaterials, i.e. those materials which are designed to mimic or replace biological materials. The primary focus of the journal is the synthesis of materials science, biology, and medical and dental science. Reports of fundamental scientific investigations are welcome, as are articles concerned with the practical application of materials in medical devices. Both experimental and theoretical work is of interest; theoretical papers will normally include comparison of predictions with experimental data, though we recognize that this may not always be appropriate. The journal also publishes technical notes concerned with emerging experimental or theoretical techniques, letters to the editor and, by invitation, review articles and papers describing existing techniques for the benefit of an interdisciplinary readership.
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