TY - GEN
T1 - Robust motion control of high precision mechanical servo systems with parameter uncertainties
AU - Qiang, Liu
AU - Peien, Feng
AU - Shuangxia, Pan
PY - 2006
Y1 - 2006
N2 - When implementing different tasks, mechanical servo systems must adapt to various working loads with different weight or inertia, which may lead to the remarkable varying of inertial parameters. However, for such cases, motion control methods at present such as PD control and disturbance observer based robust control design, may exhibit instability or decline of tracking performance. For the problems mentioned above, a novel nonlinear control scheme, for which the varying range of inertia] parameters was supposed to known, was presented. The nonlinear controller is composed of two parts: the PD control design for the reference model system, and the sliding mode control of the mechanical plant. The sliding mode technique was used for servo system to achieve robust stability and guaranteed transient response, and the boundary layer control was adopted to avoid chattering introduced by control switching. The global stability of the system is proved, and the transient performance is analyzed. Computer simulation results developed for a DC motor servo system show the effectiveness of the proposed method.
AB - When implementing different tasks, mechanical servo systems must adapt to various working loads with different weight or inertia, which may lead to the remarkable varying of inertial parameters. However, for such cases, motion control methods at present such as PD control and disturbance observer based robust control design, may exhibit instability or decline of tracking performance. For the problems mentioned above, a novel nonlinear control scheme, for which the varying range of inertia] parameters was supposed to known, was presented. The nonlinear controller is composed of two parts: the PD control design for the reference model system, and the sliding mode control of the mechanical plant. The sliding mode technique was used for servo system to achieve robust stability and guaranteed transient response, and the boundary layer control was adopted to avoid chattering introduced by control switching. The global stability of the system is proved, and the transient performance is analyzed. Computer simulation results developed for a DC motor servo system show the effectiveness of the proposed method.
KW - Motion control
KW - Robust
KW - Tracking
UR - https://www.scopus.com/pages/publications/34047214335
U2 - 10.1109/WCICA.2006.1713542
DO - 10.1109/WCICA.2006.1713542
M3 - 会议稿件
AN - SCOPUS:34047214335
SN - 1424403324
SN - 9781424403325
T3 - Proceedings of the World Congress on Intelligent Control and Automation (WCICA)
SP - 8054
EP - 8058
BT - Proceedings of the World Congress on Intelligent Control and Automation (WCICA)
T2 - 6th World Congress on Intelligent Control and Automation, WCICA 2006
Y2 - 21 June 2006 through 23 June 2006
ER -