TY - GEN
T1 - Global sliding mode control based on disturbance observer for motor servo system and application to flight simulator
AU - Dong, Xiaomeng
AU - Wu, Yunjie
AU - Xiao, Song
AU - Wang, Jianmin
N1 - Publisher Copyright:
© 2014 IEEE.
PY - 2015/1/12
Y1 - 2015/1/12
N2 - A global sliding mode controller (GSMC) based on disturbance observer (DOB) is proposed for motor servo systems which are widely used, but whose performance is vulnerable to external disturbances and parameter variations. The initial state of the system is set on the sliding surface by employing an integral switching function, and by applying linear quadratic regulator (LQR) optimal theory, the sliding mode motion is designed to be a optimal one, which minimizes a given performance index and improves the tracking performances. With DOB estimating the equivalent disturbance and using the same amount of compensation in control input, the switching gain only needs to be greater than the bound of the disturbance estimation error, which alleviates chattering greatly. The compound controller consists of an optimal linear state feedback controller (OLSFC), a nonlinear robust controller (NRC) and a DOB. Experimental results show that the proposed compound control scheme possesses better tracking precision, stronger robustness against external disturbances and parameter variations with great chattering alleviation in control input.
AB - A global sliding mode controller (GSMC) based on disturbance observer (DOB) is proposed for motor servo systems which are widely used, but whose performance is vulnerable to external disturbances and parameter variations. The initial state of the system is set on the sliding surface by employing an integral switching function, and by applying linear quadratic regulator (LQR) optimal theory, the sliding mode motion is designed to be a optimal one, which minimizes a given performance index and improves the tracking performances. With DOB estimating the equivalent disturbance and using the same amount of compensation in control input, the switching gain only needs to be greater than the bound of the disturbance estimation error, which alleviates chattering greatly. The compound controller consists of an optimal linear state feedback controller (OLSFC), a nonlinear robust controller (NRC) and a DOB. Experimental results show that the proposed compound control scheme possesses better tracking precision, stronger robustness against external disturbances and parameter variations with great chattering alleviation in control input.
KW - chattering alleviation
KW - disturbance observer
KW - motor servo system
KW - optimal control
KW - sliding mode control
UR - https://www.scopus.com/pages/publications/84922570848
U2 - 10.1109/CGNCC.2014.7007257
DO - 10.1109/CGNCC.2014.7007257
M3 - 会议稿件
AN - SCOPUS:84922570848
T3 - 2014 IEEE Chinese Guidance, Navigation and Control Conference, CGNCC 2014
SP - 370
EP - 375
BT - 2014 IEEE Chinese Guidance, Navigation and Control Conference, CGNCC 2014
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 6th IEEE Chinese Guidance, Navigation and Control Conference, CGNCC 2014
Y2 - 8 August 2014 through 10 August 2014
ER -