Determination of the ligamentous and contact forces in the human tibio-femoral joint using a three-dimensional dynamic anatomical model

E. Abdel-Rahman, M. S. Hefzy, T. Cooke
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引用次数: 1

Abstract

This paper describes for the first time the three-dimensional dynamic response of the tibio-femoral joint when subjected to sudden external loads utilizing a three-dimensional dynamic anatomical model. This model consists of two body segments in contact (the femur and the tibia) executing a general three-dimensional dynamic motion within the constraints of the ligamentous structures. Each of the articular surfaces at the tibio-femoral joint was represented by a separate mathematical function. The joint ligaments were modeled as nonlinear elastic springs. The six-degrees-of-freedom joint motions were characterized using six kinematic parameters and ligamentous forces were expressed in terms of these six parameters. Model equations consist of nonlinear second order ordinary differential equations coupled with nonlinear algebraic constraints. An algorithm was developed to solve this Differential-Algebraic Equations (DAE) system employing a DAE solver, namely the Differential/Algebraic System Solver (DASSL) developed at Lawrence Livermore National Laboratory. Model calculations show that as the knee was flexed from 15/spl deg/ to 90/spl deg/, it underwent internal tibial rotation. However, in the first 15 degrees of knee flexion, this trend was reversed: the tibia rotated internally as the knee was extended from 15/spl deg/ to full extension. This finding is important since it is in agreement with the emerging thought of the need to re-evaluate the so called "screw-home mechanism".
利用三维动态解剖模型测定人体胫骨-股骨关节的韧带和接触力
本文首次利用三维动态解剖模型描述了胫骨-股骨关节在受到突然外部载荷时的三维动态响应。该模型由两个接触的身体部分(股骨和胫骨)组成,在韧带结构的约束下执行一般的三维动态运动。胫骨-股骨关节的每个关节面都用一个单独的数学函数表示。将关节韧带建模为非线性弹性弹簧。用6个运动学参数描述了六自由度关节的运动,并用这6个参数表示了韧带力。模型方程由非线性二阶常微分方程和非线性代数约束组成。采用DAE求解器,即劳伦斯利弗莫尔国家实验室开发的微分/代数系统求解器(DASSL),开发了一种算法来求解该微分-代数方程(DAE)系统。模型计算表明,当膝关节从15/spl°/屈曲到90/spl°/时,发生了胫骨内旋。然而,在膝关节屈曲的前15度,这种趋势被逆转:当膝关节从15/spl度/伸展到完全伸展时,胫骨向内旋转。这一发现很重要,因为它与需要重新评估所谓的“旋回机制”的新兴思想一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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