DocumentCode :
2547733
Title :
A semi-active suspension design for off-road vehicle base on Magneto-rheological technology
Author :
Gui Long-ming ; Shi Wen-ku ; Liu Wei
Author_Institution :
Nanjing IVECO Motor Co. Ltd., Nanjing, China
fYear :
2012
fDate :
29-31 May 2012
Firstpage :
2565
Lastpage :
2568
Abstract :
In this paper, a Magneto-Rheological (MR) fluid semi-active suspension system was tested on a off-road vehicle to determine the performance improvements compared to passive suspensions. In the process of suspension design, ride comfort and handing stability are two conflicting considerations. MR fluid dampers are a new class of devices that more suitable for the requirements of automotive applications, including having very low power requirements. According to different driving conditions and body posture, semi-active suspension based on MR damper can coordinate the body posture angle, and reduce the vibration from suspension pass to vehicle body. This paper deals with theoretical analysis and experiments of MR fluid damper in semi-active suspension system. For the purpose of developing semi-active controller, a detailed vehicle Virtual Prototyping model with steering, frame and semi-active suspensions systems was established by vehicle dynamics simulation software SIMPACK. The co-simulation of ride comfort and handing stability showed that the semi-active suspension designed in this paper was suitable for improving the ride and handing performance simultaneously.
Keywords :
automotive components; ergonomics; magnetorheology; mechanical engineering computing; mechanical stability; off-road vehicles; shock absorbers; steering systems; vehicle dynamics; vibration control; virtual prototyping; MR fluid dampers; SIMPACK software; automotive applications; body posture angle; magnetorheological fluid; magnetorheological technology; off-road vehicles; passive suspensions; ride comfort; ride handing stability; semiactive controller; semiactive suspension design; steering; vehicle body; vehicle dynamics simulation; vehicle virtual prototyping model; vibration reduction; Adaptation models; Artificial neural networks; Mathematical model; Shock absorbers; Vehicles; Magneto-rheological; Off-road Vehicle; handing stability; ride comfort; semi-active suspension;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fuzzy Systems and Knowledge Discovery (FSKD), 2012 9th International Conference on
Conference_Location :
Sichuan
Print_ISBN :
978-1-4673-0025-4
Type :
conf
DOI :
10.1109/FSKD.2012.6234078
Filename :
6234078
Link To Document :
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