DocumentCode :
133502
Title :
Vibration control of a semi-active seat suspension system using magnetorheological damper
Author :
Metered, H. ; Sika, Z.
Author_Institution :
Czech Tech. Univ. in Prague, Prague, Czech Republic
fYear :
2014
fDate :
10-12 Sept. 2014
Firstpage :
1
Lastpage :
7
Abstract :
Seat suspension is an important system to the ride comfort experience of a commercial vehicle´s driver and passengers. The usage of magnetorheological (MR) dampers in seat suspension systems has been shown to offer a momentous enhancement regarding to the ride comfort. In the majority, research work on seat MR dampers has been emphasized on the control implementation but most of them were not quite appropriate for the semi-active and nonlinear hysteretic nature of the MR damper. This paper introduces a deeply investigation into the application of a semi-active MR damper for a truck seat suspension, enabling more efficient control algorithm. The proposed control system consists of a system controller that calculates the desired damper force using a fuzzy logic control (FLC) algorithm, and a signum function damper controller that provides an approximation of the command voltage required to track the desired damping force. A mathematical model and the equations of motion of a two degree-of-freedom semi-active seat suspension with an MR damper are derived and simulated using Matlab/Simulink software. The proposed semi-active MR seat suspension is compared to passive and uncontrolled seat suspensions for prescribed base displacements. These inputs are representative of the vibration of the body mass of a passive quarter-vehicle suspension under bump and random-profile road excitation. Seat travel distance and driver body acceleration are assessed as system performance criteria through bump and random road excitations, in order to quantify the efficiency of the proposed semi-active control technique. The simulated results indicate that the proposed FLC of the semi-active MR seat suspension provides a significant enhancement in ride comfort.
Keywords :
damping; fuzzy control; magnetorheology; road vehicles; seats; shock absorbers; vibration control; FLC algorithm; MR dampers; Matlab; Simulink; fuzzy logic control; magnetorheological damper; semiactive seat suspension system; signum function damper controller; system controller; vibration control; Control systems; Force; Mathematical model; Roads; Shock absorbers; Vehicles; MR damper; fuzzy logic; ride comfort; seat suspension;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mechatronic and Embedded Systems and Applications (MESA), 2014 IEEE/ASME 10th International Conference on
Conference_Location :
Senigallia
Print_ISBN :
978-1-4799-2772-2
Type :
conf
DOI :
10.1109/MESA.2014.6935527
Filename :
6935527
Link To Document :
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