DocumentCode :
1233490
Title :
Paraplegic standing controlled by functional neuromuscular stimulation. I. Computer model and control-system design
Author :
Khang, Gon ; Zajac, Felix E.
Author_Institution :
Veterans Adm. Med. Center, Palo Alto, CA, USA
Volume :
36
Issue :
9
fYear :
1989
Firstpage :
873
Lastpage :
884
Abstract :
A planar computer model for investigating paraplegic standing induced by functional neuromuscular stimulation is discussed. The model consists of nonlinear musculotendon dynamics (pulse train activation dynamics and musculotendon actuator dynamics), nonlinear body-segmented dynamics, and a linear output-feedback control law. The model of activation dynamics is an analytic expression that characterizes the relation between the stimulus parameters and the muscle activation. Hill´s classic two-element muscle model was modified into a musculotendon actuator model in order to account for the effects of submaximal activation and tendon elasticity on development force by the actuator. The three body-segmental, multijoint model accounts for the anterior-posterior movements of the head and trunk, the thigh, and the shank. Arm movements was modeled as an external disturbance, and the disturbance to the body-segmented dynamics was imposed by means of quasistatic analysis.
Keywords :
biocontrol; biomechanics; medical computing; muscle; neurophysiology; patient treatment; physiological models; 2-element muscle model; activation dynamics model; arm movement; control system design; linear output-feedback control law; musculotendon actuator dynamics; musculotendon actuator model; nonlinear body-segmented dynamics; nonlinear musculotendon dynamics; planar computer model; pulse train activation dynamics; quasistatic analysis; submaximal activation; tendon elasticity; Automatic control; Fatigue; Feedback control; Hydraulic actuators; Mechanical engineering; Muscles; Neuromuscular stimulation; Research and development; Space vector pulse width modulation; Tendons; Biomechanics; Computer Simulation; Electric Stimulation Therapy; Energy Metabolism; Humans; Models, Neurological; Muscle Contraction; Paraplegia;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.35296
Filename :
35296
Link To Document :
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