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基于双平面动态X线立体摄影测量分析的高精度运动学对患者特异性膝关节有限元模型进行验证。

Patient-specific knee joint finite element model validation with high-accuracy kinematics from biplane dynamic Roentgen stereogrammetric analysis.

作者信息

Papaioannou G, Nianios G, Mitrogiannis C, Fyhrie D, Tashman S, Yang K H

机构信息

Human Movement Sciences, MOVE Center, College of Health Sciences, University of Wisconsin Milwaukee, Room 364 Pavilion, P.O. Box 413, Milwaukee, WI 53201-0413, USA.

出版信息

J Biomech. 2008 Aug 28;41(12):2633-8. doi: 10.1016/j.jbiomech.2008.06.027.

Abstract

Little is known about in vivo menisci loads and displacements in the knee during strenuous activities. A new method that combines high-speed kinematics measured with biplane dynamic Roentgen stereogrammetric analysis (DRSA) and a subject-specific finite element (FE) model for studying in vivo meniscal behavior is presented here. Further model calibration in a very controlled uniaxial low and high-rate compression loading condition is presented by comparing the model behavior against the measured high-accuracy menisci DRSA kinematics and direct tibio-femoral pressure measurement from a K-scan sensor. It is apparent that certain model aspects such as removing of the pressure sensor from the model can result in relatively large errors (14%) in contact parameters that are not reflected in the change of the measured meniscal kinematics. Changing mesh size to 1mm by 1mm elements increased the magnitude of all but one of the contact variables by up to 45%. This local validation using accurate localized patient-specific geometry and meniscal kinematics was needed to enhance model fidelity at the level of contact between menisci and cartilage.

摘要

关于剧烈活动期间膝关节内半月板的负荷和位移,目前所知甚少。本文介绍了一种新方法,该方法将通过双平面动态X射线立体摄影测量分析(DRSA)测得的高速运动学与用于研究半月板体内行为的特定个体有限元(FE)模型相结合。通过将模型行为与测量得到的高精度半月板DRSA运动学以及K扫描传感器直接测量的胫股压力进行比较,展示了在非常可控的单轴低速和高速压缩加载条件下的进一步模型校准。很明显,某些模型方面,如从模型中移除压力传感器,可能会在接触参数上导致相对较大的误差(14%),而这些误差在测量的半月板运动学变化中并未体现。将网格尺寸改为1mm×1mm的单元,除了一个接触变量外,所有其他接触变量的幅度增加了高达45%。需要使用精确的局部患者特定几何形状和半月板运动学进行这种局部验证,以提高半月板与软骨之间接触层面的模型保真度。

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