什么是力臂?利用广义坐标计算生物力学模型中的肌肉效能。

Michael A Sherman, Ajay Seth, Scott L Delp
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引用次数: 87

摘要

生物力学研究者经常使用多体模型来表示生物系统。然而,从生物学到力学再到力学的映射可能会有问题。OpenSim是一个用于此目的的流行开源工具,它在生物规范和称为Simbody的底层广义坐标多体系统之间进行映射。生物力学研究人员和临床医生感兴趣的一个量是“肌肉力矩臂”,这是一种衡量肌肉在一系列配置中对特定运动做出贡献的有效性的方法。一旦建立了模型,OpenSim可以自动计算任何肌肉的这些数量。在简单的情况下,这种计算与机械工程中传统的力臂计算相同。但一块肌肉可能跨越几个关节(如手腕、脖子、背部),并可能沿着一条蜿蜒的路径穿过各种曲面。在多体模型中,一个生物关节可能需要几个体甚至一个机构来准确地表示(例如,膝盖、肩膀)。在这些情况下,我们需要一个肌肉力臂的仔细定义,类似于机械工程概念,但推广到生物医学研究人员使用。在这里,我们提出了一些生物力学建模的挑战,以及它们如何在OpenSim和Simbody中解决,以产生生物学上有意义的肌肉力矩臂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
WHAT IS A MOMENT ARM? CALCULATING MUSCLE EFFECTIVENESS IN BIOMECHANICAL MODELS USING GENERALIZED COORDINATES.

Biomechanics researchers often use multibody models to represent biological systems. However, the mapping from biology to mechanics and back can be problematic. OpenSim is a popular open source tool used for this purpose, mapping between biological specifications and an underlying generalized coordinate multibody system called Simbody. One quantity of interest to biomechanical researchers and clinicians is "muscle moment arm," a measure of the effectiveness of a muscle at contributing to a particular motion over a range of configurations. OpenSim can automatically calculate these quantities for any muscle once a model has been built. For simple cases, this calculation is the same as the conventional moment arm calculation in mechanical engineering. But a muscle may span several joints (e.g., wrist, neck, back) and may follow a convoluted path over various curved surfaces. A biological joint may require several bodies or even a mechanism to accurately represent in the multibody model (e.g., knee, shoulder). In these situations we need a careful definition of muscle moment arm that is analogous to the mechanical engineering concept, yet generalized to be of use to biomedical researchers. Here we present some biomechanical modeling challenges and how they are resolved in OpenSim and Simbody to yield biologically meaningful muscle moment arms.

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