The relationship between electrical stimulus and joint torque: a dynamic model.

M Ferrarin, A Pedotti
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引用次数: 199

Abstract

The knowledge of the behavior of electrically activated muscles is an important requisite for the development of functional electrical stimulation (FES) systems to restore mobility to persons with paralysis. The aim of this work was to develop a model capable of relating electrical parameters to dynamic joint torque for FES applications. The knee extensor muscles, stimulated using surface electrodes, were used for the experimental preparation. Both healthy subjects and people with paraplegia were tested. The dynamics of the lower limb were represented by a nonlinear second order model, which took account of the gravitational and inertial characteristics of the anatomical segments as well as the damping and stiffness properties of the knee joint. The viscous-elastic parameters of the system were identified experimentally through free pendular movements of the leg. Leg movements induced by quadriceps stimulation were acquired too, using a motion analysis system. Results showed that, for the considered experimental conditions, a simple one-pole transfer function is able to model the relationship between stimulus pulsewidth (PW) and active muscle torque. The time constant of the pole was found to depend on the stimulus pattern (ramp or step) while gain was directly dependent on stimulation frequency.

电刺激与关节转矩的动态关系模型。
了解电激活肌肉的行为是开发功能性电刺激(FES)系统以恢复瘫痪患者活动能力的重要必要条件。这项工作的目的是开发一个能够将FES应用的电气参数与动态关节扭矩相关联的模型。用表面电极刺激膝关节伸肌进行实验准备。健康受试者和截瘫患者都接受了测试。该模型考虑了各解剖节段的重力和惯性特性以及膝关节的阻尼和刚度特性,采用非线性二阶模型来表示下肢动力学。通过腿的自由摆动,实验确定了系统的粘弹性参数。使用运动分析系统也获得了四头肌刺激引起的腿部运动。结果表明,在考虑的实验条件下,一个简单的单极传递函数能够模拟刺激脉冲宽度(PW)与主动肌肉扭矩之间的关系。极点的时间常数取决于刺激模式(斜坡或阶跃),而增益直接取决于刺激频率。
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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