LOAD ON THE UPPER EXTREMITY IN MANUAL WHEELCHAIR PROPULSION

被引:92
作者
VEEGER, HEJ
VANDERWOUDE, LHV
ROZENDAL, RH
机构
[1] Department of Functional Anatomy, Faculty of Human Movement Sciences, Vrije Universiteit Amsterdam, Amsterdam
[2] Department of Health Science, Faculty of Human Movement Sciences, Vrije Universiteit Amsterdam, Amsterdam
关键词
WHEELCHAIR PROPULSION; DYNAMICS; WHEELCHAIR EXERCISE; ELECTROMYOGRAPHY; JOINT TORQUES; COORDINATION;
D O I
10.1016/1050-6411(91)90014-V
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
To study joint contributions in manual wheelchair propulsion, we developed a three-dimensional model of the upper extremity. The model was applied to data collected in an experiment on a wheelchair ergometer in which mechanical advantage (MA) was manipulated. Five male able-bodied subjects performed two wheelchair exercise tests (external power output P(ext) = 0.25-0.50 W . kg-1) against increasing speeds (1.11-1.39-1.67 m.s-1), which simulated MA of 0.58-0.87. Results indicated a decrease in mechanical efficiency (ME) with increasing MA that could not be related to applied forces or joint torques. Increase in P(ext) was related to increases in joint torques. On the average, the highest torques were noted in shoulder flexion and adduction (35.6 and 24.6 N . m at MA = 0.58 and P(ext) = 0.50 W . kg-1). Peak elbow extension and flexion torques were -10.6 and 8.5 N . m. Based on the combination of torques and electromyographic (EMG) records of upper extremity muscles, anterior deltoid and pectoralis muscles are considered the prime movers in manual wheelchair propulsion. Coordinative aspects of manual wheelchair propulsion concerning the function of (biarticular) muscles in directing the propulsive forces and the redistribution of joint torques in a closed chain are discussed. We found no conclusive evidence for the role of elbow extensors in direction of propulsive forces.
引用
收藏
页码:270 / 280
页数:11
相关论文
共 27 条
[1]  
Brown, Knowlton, Hamill, Schneider, Hetzler, Physiological and mechanical differences between wheelchair-dependent and able-bodied subjects during wheelchair ergometry, Eur J Appl Physiol, 60, pp. 179-182, (1990)
[2]  
Brubaker, Determination of the effects of mechanical advantage on propulsion efficiency with had rims, Mobility 1983–1984, pp. 1-3, (1984)
[3]  
Cavanagh, Komi, Electromechanical delay in human skeletal muscle under concentric and eccentric contractions, Eur J Appl Physiol, 42, pp. 159-163, (1979)
[4]  
Cerquiglini, Figura, Marchetti, Ricci, Biomechanics of wheelchair propulsion, Biomechanics VII-A, pp. 410-419, (1981)
[5]  
Clauser, McConville, Young, Weight, volume and center of mass of segments of the human body, Technical Report AMRL-TR-69-70, (1969)
[6]  
Cooper, A systems approach to the modeling of racing wheelchair propulsion [A technical note], J Rehab Res Dev, 27, pp. 151-162, (1990)
[7]  
Dreisinger, Londeree, Wheelchair exercise: a review, Paraplegia, 20, pp. 20-34, (1982)
[8]  
Gehlsen, Davis, Bahamonde, Intermittent velocity and wheelchair performance characteristics, Ad Phys Act Q, 7, pp. 219-230, (1990)
[9]  
Glaser, Sawka, Suryaprasad, Applied physiology for wheelchair design, J Appl Physiol Resp Environ Exerc Physiol, 48, pp. 41-44, (1980)
[10]  
Harburn, Spaulding, Muscle activity in the spinal cord-injured during wheelchair ambulation, Am J Occup Ther, 40, pp. 629-636, (1986)