DocumentCode :
3009870
Title :
Torque vectoring for rear axle using Adaptive Sliding Mode Control
Author :
Thang Truong, D.V. ; Meywerk, Martin ; Tomaske, Winfried
Author_Institution :
Sch. of Transp. Eng., Hanoi Univ. of Sci. & Technol., Hanoi, Vietnam
fYear :
2013
fDate :
25-28 Nov. 2013
Firstpage :
328
Lastpage :
333
Abstract :
Active chassis control systems have been developed and applied increasingly in the automotive industry to improve vehicle global safety and comfort from normal to critical driving situations. These systems like Electronic Stability Program (ESP), Vehicle Dynamic Control (VDC), Direct Yaw moment Control (DYC), Traction Control System (TCS) play the most important role therein but they are all braked based systems. The weakness of these s is to cause energy loss during acceleration, whereas Torque Vectoring System could improve the driving stability without deceleration during cornering or acceleration. An additionally corrective torque based on desired yaw moment is computed from reference yaw rate and sideslip angle and then applied to the left and the right rear wheels. In this paper, a Torque Vectoring Controller on the basis of an Adaptive Sliding Mode Control (SMC) in which a combined sliding surface derived from the error of actual and reference signals of both yaw rate and body sideslip angle and an adaptive gain control law are proposed. The proposed approach is verified by the co-simulations of Matlab®/Simulink® and Carsim®. Simulation results demonstrate the effectiveness of the system and the overall enhancement in vehicle´s stability and drivability.
Keywords :
adaptive control; automobile industry; automotive components; axles; brakes; mechanical stability; road safety; torque control; variable structure systems; vehicle dynamics; wheels; Carsim; DYC; ESP; Matlab; SMC; Simulink; TCS; VDC; active chassis control systems; adaptive gain control law; adaptive sliding mode control; automotive industry; braked based systems; corrective torque; critical driving situations; direct yaw moment control; driving stability; electronic stability program; normal driving situations; rear axle; rear wheels; reference yaw rate; sideslip angle; sliding surface; torque vectoring controller; torque vectoring system; traction control system; vehicle drivability; vehicle dynamic control; vehicle global comfort; vehicle global safety; vehicle stability; Axles; Mathematical model; Stability analysis; Torque; Vehicle dynamics; Vehicles; Wheels; Vehicle dynamics; robust control; sliding mode; torque vectoring; tracking control; yaw rate tracking - side slip angle tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control, Automation and Information Sciences (ICCAIS), 2013 International Conference on
Conference_Location :
Nha Trang
Print_ISBN :
978-1-4799-0569-0
Type :
conf
DOI :
10.1109/ICCAIS.2013.6720577
Filename :
6720577
Link To Document :
بازگشت