Helgason B, Gilchrist S, Ariza O, Vogt P, Enns-Bray W, Widmer R P, Fitze T, Pálsson H, Pauchard Y, Guy P, Ferguson S J, Cripton P A
Institute for Biomechanics, ETH-Zürich, HPP-O12, Hönggerbergring 64, CH-8093 Zürich, Switzerland.
Orthopaedic and Injury Biomechanics Group; Centre for Hip Health and Mobility; Department of Mechanical Engineering; Department of Orthopedics, University of British Columbia, Vancouver, Canada.
Med Eng Phys. 2016 Jul;38(7):679-689. doi: 10.1016/j.medengphy.2016.03.006. Epub 2016 May 12.
Contributing to slow advance of finite element (FE) simulations for hip fracture risk prediction, into clinical practice, could be a lack of consensus in the biomechanics community on how to map properties to the models. Thus, the aim of the present study was first, to systematically quantify the influence of the modulus-density relationship (E-ρ) and the material mapping method (MMM) on the predicted mechanical response of the proximal femur in a side-ways fall (SWF) loading configuration and second, to perform a model-to-model comparison of the predicted mechanical response within the femoral neck for all the specimens tested in the present study, using three different modelling techniques that have yielded good validation outcome in terms of surface strain prediction and whole bone response according to the literature. We found the outcome to be highly dependent on both the E-ρ relationship and the MMM. In addition, we found that the three modelling techniques that have resulted in good validation outcome in the literature yielded different principal strain prediction both on the surface as well as internally in the femoral neck region of the specimens modelled in the present study. We conclude that there exists a need to carry out a more comprehensive validation study for the SWF loading mode to identify which combination of MMMs and E-ρ relationship leads to the best match for whole bone and local mechanical response. The MMMs tested in the present study have been made publicly available at https://simtk.org/home/mitk-gem.
有限元(FE)模拟在髋部骨折风险预测方面进展缓慢,难以应用于临床实践,原因可能是生物力学界在如何将属性映射到模型上缺乏共识。因此,本研究的目的首先是系统地量化模量 - 密度关系(E - ρ)和材料映射方法(MMM)对侧向跌倒(SWF)加载配置下近端股骨预测力学响应的影响,其次是使用三种不同的建模技术,对本研究中测试的所有标本在股骨颈内的预测力学响应进行模型间比较,根据文献,这三种建模技术在表面应变预测和全骨响应方面都取得了良好的验证结果。我们发现结果高度依赖于E - ρ关系和MMM。此外,我们发现文献中导致良好验证结果的三种建模技术,在本研究建模的标本的股骨颈区域表面以及内部都产生了不同的主应变预测。我们得出结论,需要对SWF加载模式进行更全面的验证研究,以确定MMM和E - ρ关系的哪种组合能导致全骨和局部力学响应的最佳匹配。本研究中测试的MMM已在https://simtk.org/home/mitk - gem上公开提供。