A neuromuscular-like model for robotic compliance control
Changsheng Wu, K.-Y. Young, James C. Houk
- Year
- 2002
- Citations
- 10
Abstract
The muscle-reflex mechanisms of private limbs are studied and modeled so that robotic controls may benefit from the findings. An extensive body of experimental evidence indictates that velocity-dependent force responses of the neuromuscular system have a nonlinear damping effect proportional to a fractional power of velocity. This highly nonlinear viscosity may help limbs adapt to different loads and bring movements to graceful terminations. To explore the characteristics of this nonlinear damping property, a theoretical study using the phase-plane approach is presented. The effects of different loads, damping constants, and stiffnesses are analyzed and simulated. From the results of this phase-plane analysis, a muscle-reflex model is developed and proposed for robotic compliance control.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
Keywords
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