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Simplified Boundary Conditions Alter Cortical-Trabecular Load Sharing at the Distal Radius; A Multiscale Finite Element Analysis

机译:简化的边界条件改变了远端半径处的皮质-小梁负载分担;多尺度有限元分析

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摘要

High-resolution peripheral quantitative computed tomography (HR-pQCT) derived micro-finite element (FE) modeling is used to evaluate mechanical behavior at the distal radius microstructure. However, these analyses typically simulate non-physiologic simplified platen-compression boundary conditions on a small section of the distal radius. Cortical and trabecular regions contribute uniquely to distal radius mechanical behavior, and various factors affect these regions distinctly. Generalized strength predictions from standardized platen-compression analyses may not adequately capture region specific responses in bone. Our goal was to compare load sharing within the cortical-trabecular compartments between the standardized platen-compression BC simulations, and physiologic BC simulations using a validated multiscale approach. Clinical- and high-resolution images were acquired from nine cadaveric forearm specimens using an HR-pQCT scanner. Multiscale FE models simulating physiologic BCs, and micro-FE only models simulating platen-compression BCs were created for each specimen. Cortical and trabecular loads (N) along the length of the distal radius micro-FE section were compared between BCs using correlations. Principal strain distributions were also compared quantitatively. Cortical and trabecular loads from the platen-compression BC simulations were strongly correlated to the physiologic BC simulations. However, a 30% difference in cortical loads distally, and a 53% difference in trabecular loads proximally was observed under platen BC simulations. Also, distribution of principal strains was clearly different. Our data indicated that platen-compression BC simulations alter cortical-trabecular load sharing. Therefore, results from these analyses should be interpreted in the appropriate mechanical context for clinical evaluations of normal and pathologic mechanical behavior at the distal radius.
机译:高分辨率外围定量计算机断层扫描(HR-pQCT)派生的微有限元(FE)建模用于评估远端micro骨微结构的力学行为。但是,这些分析通常在远端radius骨的一小部分上模拟非生理简化的压板边界条件。皮质和小梁区域对distal骨远端的机械行为有独特的贡献,并且各种因素会明显影响这些区域。来自标准压板压缩分析的一般强度预测可能无法充分捕获骨骼中特定区域的反应。我们的目标是使用经过验证的多尺度方法,比较标准压板BC模拟和生理BC模拟之间的皮质-小梁腔内的负荷分配。使用HR-pQCT扫描仪从9个尸体前臂标本中获取了临床和高分辨率图像。为每个样本创建了模拟生理性BC的多尺度有限元模型和仅模拟模拟压板BC的微型有限元模型。使用相关性比较了沿radius骨远端微型FE截面长度的皮质和小梁负荷(N)。主应变分布也进行了定量比较。压板BC模拟的皮质和小梁负荷与BC生理模拟密切相关。然而,在压板BC模拟下,观察到远端的皮质负荷差异为30%,而近端的骨小梁负荷差异为53%。同样,主要菌株的分布也明显不同。我们的数据表明,压板BC模拟改变了皮质-小梁的负载分配。因此,应在适当的机械环境中解释这些分析的结果,以便对clinical骨远端的正常和病理机械行为进行临床评估。

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