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Application study on Iterative Learning Control of high speed motions for parallel robotic manipulator

Houssem Abdellatif, Matthias Feldt, Bodo Heimann

发表年份
2006
引用次数
12

摘要

This paper presents a novel application of Iterative Learning Control (ILC). It is about bettering control performance of Parallel Kinematic Manipulators (PKM) in the range of high dynamics. Such mechanisms suffer very often from lack of accuracy at high speed, since uncertainties, nonlinearities and disturbances have an important impact. The case seems to be predestinated for applying ILC. This will be demonstrated in this paper, where additional to a feedforward decoupling control structure, ILC techniques are used to decrease remaining tracking errors. Three algorithms are chosen to be validated, adjusted and compared. It is shown, that with an appropriate strategy, linear ILC approaches can be implemented on highly nonlinear and coupled MIMO-Systems, such as parallel manipulators.

关键词

Iterative learning controlDecoupling (probability)Control theory (sociology)KinematicsComputer scienceFeed forwardControl engineeringParallel manipulatorNonlinear systemRobot manipulator

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