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Improved control of intelligent excavator using proportional-integral-plus gain scheduling

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【作者】 顾军D. SEWARD

【Author】 GU Jun1, D. SEWARD2 1. School of Mechanical and Electric Engineering, Soochow University, Suzhou 215006, China; 2. Engineering Department, Lancaster University, Lancaster, LA1 4YR, UK

【机构】 School of Mechanical and Electric Engineering, Soochow UniversityEngineering Department, Lancaster University

【摘要】 Consider the design and implementation of an electro-hydraulic control system for a robotic excavator, namely the Lancaster University computerized and intelligent excavator (LUCIE). The excavator was developed to autonomously dig trenches without human intervention. One stumbling block is the achievement of adequate, accurate, quick and smooth movement under automatic control, which is difficult for traditional control algorithm, e.g. PI/PID. A gain scheduling design, based on the true digital proportional-integral-plus (PIP) control methodology, was utilized to regulate the nonlinear joint dynamics. Simulation and initial field tests both demonstrated the feasibility and robustness of proposed technique to the uncertainties of parameters, time delay and load disturbances, with the excavator arm directed along specified trajectories in a smooth, fast and accurate manner. The tracking error magnitudes for oblique straight line and horizontal straight line are less than 20 mm and 50 mm, respectively, while the velocity reaches 9 m/min.

【Abstract】 Consider the design and implementation of an electro-hydraulic control system for a robotic excavator, namely the Lancaster University computerized and intelligent excavator (LUCIE). The excavator was developed to autonomously dig trenches without human intervention. One stumbling block is the achievement of adequate, accurate, quick and smooth movement under automatic control, which is difficult for traditional control algorithm, e.g. PI/PID. A gain scheduling design, based on the true digital proportional-integral-plus (PIP) control methodology, was utilized to regulate the nonlinear joint dynamics. Simulation and initial field tests both demonstrated the feasibility and robustness of proposed technique to the uncertainties of parameters, time delay and load disturbances, with the excavator arm directed along specified trajectories in a smooth, fast and accurate manner. The tracking error magnitudes for oblique straight line and horizontal straight line are less than 20 mm and 50 mm, respectively, while the velocity reaches 9 m/min.

【基金】 Project(K5117827)supported by Scientific Research Foundation for the Returned Overseas Chinese Scholars;Project(08KJB510021)supported by the Natural Science Research Council of Jiangsu Province,China;Project(Q3117918)supported by Scientific Research Foundation for Young Teachers of Soochow University,China;Project(60910001)supported by National Natural Science Foundation of China
  • 【文献出处】 Journal of Central South University ,中南大学学报(英文版) , 编辑部邮箱 ,2012年02期
  • 【分类号】TU621
  • 【被引频次】13
  • 【下载频次】80
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