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功能性电刺激对脊髓损伤后坐姿控制的可行性:一项模拟研究。

Feasibility of functional electrical stimulation for control of seated posture after spinal cord injury: A simulation study.

作者信息

Wilkenfeld Ari J, Audu Musa L, Triolo Ronald J

机构信息

University Hospitals of Cleveland, The Case Medical Center, Cleveland, OH, USA.

出版信息

J Rehabil Res Dev. 2006 Mar-Apr;43(2):139-52. doi: 10.1682/jrrd.2005.06.0101.

Abstract

We performed this study to determine the feasibility of controlling and stabilizing seated posture with functional electrical stimulation (FES) after paralysis from spinal cord injury (SCI) using computer simulations and a 3-dimensional model of the hip and trunk. We used the model to approximate the range of postures in the sagittal and transverse planes attainable by a seated subject and to estimate the maximum restorative moment that could be produced in a neutral posture in response to a disturbance. The simulations predicted that approximately 28 degrees of forward flexion in the sagittal plane (combined hip and trunk) and 9 degrees of lateral bending in the transverse plane should be possible with FES and that a maximum disturbance rejection moment of approximately 45 newton meters could be expected with the chosen muscle set. We tested a subject with a motor complete thoracic SCI and implanted electrodes in a subset of the selected muscles to compare the moments the subject required to maintain various hip and trunk positions with those predicted by the model. Although a significant range of seated postures was possible with FES, the data demonstrated that more complete activation of the paralyzed muscles would be needed for the subject to fully achieve the theoretical range of motion. With further refinements, we could apply these techniques to the design of control systems for regulation of seated posture and dynamic motion of the torso.

摘要

我们开展这项研究,旨在利用计算机模拟以及髋部和躯干的三维模型,确定脊髓损伤(SCI)导致瘫痪后,通过功能性电刺激(FES)控制和稳定坐姿的可行性。我们使用该模型来估算坐姿受试者在矢状面和横断面可达到的姿势范围,并估计在受到干扰时中立姿势下可产生的最大恢复力矩。模拟预测,通过FES,矢状面(髋部和躯干联合)大约可实现28度的前屈,横断面大约可实现9度的侧屈,并且使用选定的肌肉组预计可产生约45牛顿米的最大抗干扰力矩。我们测试了一名运动完全性胸段SCI受试者,并在部分选定肌肉中植入电极,以比较该受试者维持各种髋部和躯干位置所需的力矩与模型预测的力矩。虽然通过FES可以实现相当大范围内的坐姿,但数据表明,受试者要完全达到理论运动范围,需要更完全地激活瘫痪肌肉。随着进一步完善,我们可以将这些技术应用于控制系统的设计,以调节坐姿和躯干动态运动。

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