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整合建模与实验以评估人体动态肌肉骨骼功能。

Integrating modelling and experiments to assess dynamic musculoskeletal function in humans.

作者信息

Fernandez J W, Pandy M G

机构信息

Department of Mechanical and Manufacturing Engineering, The University of Melbourne, Victoria 3010, Australia.

出版信息

Exp Physiol. 2006 Mar;91(2):371-82. doi: 10.1113/expphysiol.2005.031047. Epub 2006 Jan 11.

Abstract

Magnetic resonance imaging, bi-plane X-ray fluoroscopy and biomechanical modelling are enabling technologies for the non-invasive evaluation of muscle, ligament and joint function during dynamic activity. This paper reviews these various technologies in the context of their application to the study of human movement. We describe how three-dimensional, subject-specific computer models of the muscles, ligaments, cartilage and bones can be developed from high-resolution magnetic resonance images; how X-ray fluoroscopy can be used to measure the relative movements of the bones at a joint in three dimensions with submillimetre accuracy; how complex 3-D dynamic simulations of movement can be performed using new computational methods based on non-linear control theory; and how musculoskeletal forces derived from such simulations can be used as inputs to elaborate finite-element models of a joint to calculate contact stress distributions on a subject-specific basis. A hierarchical modelling approach is highlighted that links rigid-body models of limb segments with detailed finite-element models of the joints. A framework is proposed that integrates subject-specific musculoskeletal computer models with highly accurate in vivo experimental data.

摘要

磁共振成像、双平面X射线透视检查和生物力学建模是用于在动态活动期间对肌肉、韧带和关节功能进行无创评估的使能技术。本文在这些技术应用于人体运动研究的背景下对其进行综述。我们描述了如何从高分辨率磁共振图像开发肌肉、韧带、软骨和骨骼的三维、个体化计算机模型;如何使用X射线透视检查以亚毫米精度在三维空间中测量关节处骨骼的相对运动;如何使用基于非线性控制理论的新计算方法进行复杂的三维运动动态模拟;以及如何将从此类模拟得出的肌肉骨骼力用作输入,以完善关节的有限元模型,从而在个体基础上计算接触应力分布。强调了一种将肢体节段的刚体模型与关节的详细有限元模型相联系的分层建模方法。提出了一个将个体化肌肉骨骼计算机模型与高度精确的体内实验数据相结合的框架。

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