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CONTROL OF ROBOTIC JOINTS USING PRINCIPLES FROM THE EQUILIBRIUM POINT HYPOTHESIS OF ANIMAL MOTOR CONTROL

Shane A. Migliore

发表年份
2004
引用次数
3
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摘要

Biological systems are able to perform complex movements with high energy-efficiency and, in general, can adapt to environmental changes more elegantly than traditionally engineered mechanical\nsystems. The Equilibrium Point Hypothesis describes animal motor control as trajectories of\nequilibrium joint angle and joint stiffness. Traditional approaches to robot design are unable to implement this control scheme because they lack joint actuation methods that can control mechanical stiffness, and, in general, they are unable to take advantage of energy introduced into the system by the environment. In this paper, we describe the development and implementation of an FPGA-controlled, servo-actuated robotic joint that incorporates series-elastic actuation with specially developed nonlinear springs. We show that the joint's equilibrium angle and stiffness are independently controllable and that their independence is not lost in the presence of external joint torques. This approach to joint control emulates the behavior of antagonistic muscles, and thus produces a mechanical system that demonstrates biological similarity both in its observable\noutput and in its method of control.

关键词

Control (management)Motor controlControl theory (sociology)Point (geometry)Control engineeringControl pointComputer scienceEngineeringMathematicsPsychology

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