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NMClab,一种评估肌肉粘弹性和传入反馈对关节动力学贡献的模型。

NMClab, a model to assess the contributions of muscle visco-elasticity and afferent feedback to joint dynamics.

作者信息

Schouten Alfred C, Mugge Winfred, van der Helm Frans C T

机构信息

Department of Biomechanical Engineering, Faculty of Mechanical Engineering, Laboratory for Neuromuscular Control, Delft University of Technology, Mekelweg 2, 2628 CD Delft, The Netherlands.

出版信息

J Biomech. 2008;41(8):1659-67. doi: 10.1016/j.jbiomech.2008.03.014.

Abstract

The dynamic behavior of a neuromusculoskeletal system results from the complex mechanical interaction between muscle visco-elasticity resulting from (co-)contraction and afferent feedback from muscle spindles and Golgi tendon organs. As a result of the multiple interactions the individual effect of each of the structures to the overall dynamics is hard to recognize, if not impossible. Here a neuromuscular control (NMC) model is developed to analyze the functional contribution of the various physiological structures on the mechanical behavior of a limb. The dynamics of a joint are presented in admittances, i.e. the dynamic relation between input force (or torque) and the output displacement, which can be represented by either frequency or impulse response functions. With the model it can be shown that afferent feedback reduces, while muscle visco-elasticity increases, the stability margins. This implicates that there is a delicate balance between muscle co-contraction and afferent feedback, which depends on the joint specific physiological properties. The main application of the model is educational; it is implemented in a graphical user interface allowing users to explore the role of the various physiological structures on joint dynamics. Other applications of the model are more experimental, e.g. to elucidate experimentally measured admittances and to compare the quantified parameter values with the theoretically optimal ones. It is concluded that the NMC model is a useful and intuitive tool to investigate human motor control, in a theoretical as well as an experimental way.

摘要

神经肌肉骨骼系统的动态行为源于(共同)收缩产生的肌肉粘弹性与肌梭和高尔基腱器官的传入反馈之间复杂的机械相互作用。由于存在多种相互作用,若不是不可能的话,每个结构对整体动态的单独影响也很难识别。在此开发了一种神经肌肉控制(NMC)模型,以分析各种生理结构对肢体机械行为的功能贡献。关节的动态特性以导纳表示,即输入力(或扭矩)与输出位移之间的动态关系,这可以用频率响应函数或脉冲响应函数来表示。利用该模型可以表明,传入反馈会降低稳定性裕度,而肌肉粘弹性会增加稳定性裕度。这意味着肌肉共同收缩和传入反馈之间存在微妙的平衡,这取决于关节特定的生理特性。该模型的主要应用是教育方面的;它在图形用户界面中实现,允许用户探索各种生理结构对关节动态特性的作用。该模型的其他应用更多是实验性的,例如阐明实验测量的导纳,并将量化的参数值与理论最优值进行比较。得出的结论是,NMC模型是一种有用且直观的工具,可通过理论和实验方式来研究人类运动控制。

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