Research on active disturbance rejection control technique for underwater welding robot based on model compensation

Author:

Li Shengqian,Zhang Xiaofan

Abstract

Purpose An active disturbance rejection controller (ADRC) based on model compensation is proposed in this paper. The method should first be taken a nominal model of the robot to compensate. Subsequently, the uncertain external disturbance is estimated and compensated is used an expansion state observer (ESO) in real time, which can reduce the estimating range of observation for ESO. The purpose of this paper is to suggest a novel method to improve the system tracking performance, as well as the dynamic and static performance index. Design/methodology/approach A welding robot is a complicated system with uncertainty, time-varying, strong coupling and a nonlinear system; it is more complex as if it is used in an underwater environment, and it is difficult to establish an accurate dynamic model for an underwater welding robot. Aiming at the tracking control of an underwater welding robot, it is difficult to achieve the control performance requirements by the conventional proportional integral derivative method to realize automatic tracking of the seam. Findings The simulation experiment is carried out by MATLAB/Simulink, and the application experiment is recorded. The experimental results show that the control method is correct and effective, and the system’s tracking performance is stable, and the robustness and tracking accuracy of the system are also improved. Originality/value The seam gets plumper and smoother, with better continuity and no undercut phenomenon.

Publisher

Emerald

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Control and Systems Engineering

Reference33 articles.

1. A PD-type regulator with exact gravity cancellation for robots with flexible joints,2011

2. Event-triggered predictor-based control with gain-scheduling and extended state observer for networked control systems;Information Sciences,2019

3. Practical time-delay control with adaptive gains for trajectory tracking of robot manipulators;IEEE Transactions on Industrial Electronics,2018

4. A new adaptive sliding-mode control scheme for application to robot manipulators;IEEE Transactions on Industrial Electronics,2016

5. Thermal degradation studies and hybrid neural network modelling of eutectic phase change material composites;International Journal of Energy Research,2022

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