DocumentCode
1621588
Title
Road disturbances rejection of a semi-active vehicle suspension
Author
Felix-Herran, L. ; Mehdi, Driss ; de J Rodriguez-Ortiz, J. ; Soto, R. ; Hashim, G.
Author_Institution
ITESM, Monterrey, Mexico
fYear
2013
Firstpage
1
Lastpage
6
Abstract
This research introduces a more accurate control oriented model that can be applied in the suspensions performance domain towards comfort and stability improvement. Active suspension based on Magnetorheological (MR) dampers is an attractive solution in improving vehicle stability and passenger comfort. These Dampers are highly nonlinear and their modeling and control is a challenge. The multi-model approach is applied to describe the highly nonlinear two-degrees-of-freedom (2-DOF) one-quarter-vehicle semi-active suspension with an MR damper. The objective is to show that an MR damper, represented by the Bouc-Wen approach, is suitable for control purposes. Passenger comfort and vehicle stability are translated into constraints on a controlled output. Therefore, the control problem aims to attenuate the effect of the road profile which is considered as an exogenous input. This problem is solved using the H∞ techniques applied to the non linear system. Due to the multi-model nature of the system description, the controller is obtained from Linear Matrix Inequalities conditions. A numerical case and simulation work support the results.
Keywords
H∞ control; linear matrix inequalities; magnetorheology; nonlinear systems; road vehicles; shock absorbers; stability; suspensions (mechanical components); vibration control; 2-DOF one-quarter-vehicle semiactive suspension; Bouc-Wen approach; H∞ techniques; MR dampers; control oriented model; damper control; damper modeling; linear matrix inequality conditions; magnetorheological dampers; multimodel approach; nonlinear system; nonlinear two-degrees-of-freedom one-quarter-vehicle semiactive suspension; passenger comfort; road disturbance rejection; road profile; suspension performance; vehicle stability; Equations; Magnetomechanical effects; Mathematical model; Roads; Robustness; Shock absorbers; H∞ Control strategy; Magnetorheological (MR) dampers; Passenger comfort; Semi active suspension system;
fLanguage
English
Publisher
ieee
Conference_Titel
Electronics, Computers and Artificial Intelligence (ECAI), 2013 International Conference on
Conference_Location
Pitesti
Print_ISBN
978-1-4673-4935-2
Type
conf
DOI
10.1109/ECAI.2013.6636156
Filename
6636156
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