Nonlinear Control of NMES: Incorporating Fatigue and Calcium Dynamics

Author(s):  
N. Sharma ◽  
P. M. Patre ◽  
C. M. Gregory ◽  
W. E. Dixon

Neuromuscular electrical stimulation (NMES) is a promising technique that has the potential to restore functional tasks in persons with movement disorders. Clinical and commercial NMES products exist for this purpose, but a pervasive problem with current technology is that overstimulation of the muscle (among other factors) leads to muscle fatigue. The objective of the current effort is to develop a NMES controller that incorporates the effects of muscle fatigue through an uncertain function of the calcium dynamics. A neural network-based estimate of the fatigue model mismatch is incorporated in a nonlinear controller through a backstepping based method to control the human quadriceps femoris muscle undergoing non-isometric contractions. The developed controller is proven to yield uniformly ultimately bounded stability for an uncertain nonlinear muscle model in the presence of bounded nonlinear disturbances (e.g., spasticity, delays, changing load dynamics).

2003 ◽  
Vol 94 (3) ◽  
pp. 983-990 ◽  
Author(s):  
Nicolas Babault ◽  
Michel Pousson ◽  
Anne Michaut ◽  
Jacques Van Hoecke

The effect of muscle length on neural drive (here termed “neural activation”) was investigated from electromyographic activities and activation levels (twitch interpolation). The neural activation was measured in nine men during isometric and concentric (30 and 120°/s) knee extensions for three muscle lengths (35, 55, and 75° knee flexion, i.e., shortened, intermediate, and lengthened muscles, respectively). Long (76°), medium (56°), and short (36°) ranges of motion were used to investigate the effect of the duration of concentric contraction. Neural activation was found to depend on muscle length. Reducing the duration of contraction had no effect. Neural activation was higher with short muscle length during isometric contractions and was weaker for shortened than for intermediate and lengthened muscles performing 120°/s concentric contractions. Muscle length had no effect on 30°/s concentric neural activation. Peripheral mechanisms and discharge properties of the motoneurons could partly explain the observed differences in the muscle length effect. We thus conclude that muscle length has a predominant effect on neural activation that would modulate the angular velocity dependency.


Author(s):  
Deep Seth ◽  
Damien Chablat ◽  
Fouad Bennis ◽  
Sophie Sakka ◽  
Marc Jubeau ◽  
...  

Author(s):  
Ruina Ma ◽  
Damien Chablat ◽  
Fouad Bennis ◽  
Liang Ma

2016 ◽  
Vol 55 (2) ◽  
pp. 179-189 ◽  
Author(s):  
Jenny W.H. Lou ◽  
Austin J. Bergquist ◽  
Abdulaziz Aldayel ◽  
Jennifer Czitron ◽  
David F. Collins

Sign in / Sign up

Export Citation Format

Share Document