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基于人体桡骨密度推导材料属性的线性和非线性微有限元模拟的可重复性。

Reproducibility for linear and nonlinear micro-finite element simulations with density derived material properties of the human radius.

机构信息

Institute for Biomechanics, Wolfgang-Pauli-Strasse 10, ETH Zurich, 8093 Zurich, Switzerland.

出版信息

J Mech Behav Biomed Mater. 2014 Jan;29:500-7. doi: 10.1016/j.jmbbm.2013.10.010. Epub 2013 Oct 23.

Abstract

Finite element (FE) simulations based on high-resolution peripheral quantitative computed-tomography (HRpQCT) measurements provide an elegant and direct way to estimate bone strength. Parallel solvers for nonlinear FE simulations allow the assessment not only of the initial linear elastic behavior of the bone but also materially and geometrically nonlinear effects. The reproducibility of HRpQCT measurements, as well as their analysis of microarchitecture using linear-elastic FE simulations with a homogeneous elastic modulus has been investigated before. However, it is not clear to which extent density-derived and nonlinear FE simulations are reproducible. In this study, we introduced new mechanical indices derived from nonlinear FE simulations that describe the onset of yielding and the behavior at maximal load. Using 14 embalmed forearms that were imaged three times, we found that in general the in vitro reproducibility of the nonlinear FE simulations is as good as the reproducibility of linear FE. For the nonlinear simulations precision errors (PEs) ranged between 0.4 and 3.2% and intraclass correlation coefficients were above 0.9. In conclusion, nonlinear FE simulations with density derived material properties contain important additional information that is independent from the results of the linear simulations.

摘要

基于高分辨率外周定量计算机断层扫描(HRpQCT)测量的有限元(FE)模拟为估计骨强度提供了一种优雅而直接的方法。非线性 FE 模拟的并行求解器不仅允许评估骨的初始线性弹性行为,还允许评估材料和几何非线性效应。之前已经研究过 HRpQCT 测量的可重复性,以及使用具有均匀弹性模量的线性弹性 FE 模拟对微结构进行的分析。然而,尚不清楚密度衍生和非线性 FE 模拟在多大程度上具有可重复性。在这项研究中,我们引入了新的机械指标,这些指标源自非线性 FE 模拟,用于描述屈服的开始和最大载荷下的行为。使用经过三次成像的 14 个防腐前臂,我们发现一般来说,非线性 FE 模拟的体外可重复性与线性 FE 的可重复性一样好。对于非线性模拟,精度误差(PE)在 0.4%至 3.2%之间,组内相关系数高于 0.9。总之,具有密度衍生材料特性的非线性 FE 模拟包含了独立于线性模拟结果的重要附加信息。

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