DocumentCode :
43784
Title :
Adaptive Robust Vibration Control of Full-Car Active Suspensions With Electrohydraulic Actuators
Author :
Weichao Sun ; Huijun Gao ; Bin Yao
Author_Institution :
State Key Lab. of Robot. & Syst. (HIT), Harbin Inst. of Technol., Harbin, China
Volume :
21
Issue :
6
fYear :
2013
fDate :
Nov. 2013
Firstpage :
2417
Lastpage :
2422
Abstract :
This paper investigates the problem of vibration suppression in vehicular active suspension systems, whose aim is to stabilize the attitude of the vehicle and improve the riding comfort. A full-car model is adopted, and electrohydraulic actuators with highly nonlinear characteristics are considered to form the basis of accurate control. In this paper, the H performance is introduced to realize the disturbance suppression by selecting the actuator forces as virtual inputs, and an adaptive robust control technology is further used to design controllers which help real force inputs track virtual ones. The resulting controllers are robust against both actuator parametric uncertainties and uncertain actuator nonlinearities. The stability analysis for the closed-loop system is given within the Lyapunov framework. Finally, a numerical example is given to illustrate the effectiveness of the proposed control law, where different road conditions are considered in order to reveal the closed-loop system performance in detail.
Keywords :
H control; Lyapunov methods; adaptive control; automobiles; closed loop systems; control nonlinearities; control system synthesis; electrohydraulic control equipment; nonlinear control systems; performance index; robust control; suspensions (mechanical components); uncertain systems; vehicle dynamics; vibration control; H∞ performance; Lyapunov framework; actuator force; actuator parametric uncertainties; adaptive robust control technology; adaptive robust vibration control; closed-loop system performance; control law; controller design; disturbance suppression; electrohydraulic actuators; full-car active suspension; full-car model; highly nonlinear characteristics; numerical example; riding comfort improvement; road condition; stability analysis; uncertain actuator nonlinearities; vehicle attitude stabilization; vehicular active suspension systems; vibration suppression; virtual input; Actuators; Adaptive control; Electrohydraulics; H infinity control; Robust control; Suspensions; Vehicle dynamics; Vibration control; $H_{infty}$ control; active suspension system; adaptive control; full-car model; robust control;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2012.2237174
Filename :
6450065
Link To Document :
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