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[1] Nguyen Van Liem, Zhang Jianrun, Le Van Quynh, et al. Performance analysis of air suspension system of heavy truckwith semi-active fuzzy control [J]. Journal of Southeast University (English Edition), 2017, 33 (2): 159-165. [doi:10.3969/j.issn.1003-7985.2017.02.006]
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Performance analysis of air suspension system of heavy truckwith semi-active fuzzy control()
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Journal of Southeast University (English Edition)[ISSN:1003-7985/CN:32-1325/N]

Volumn:
33
Issue:
2017 2
Page:
159-165
Research Field:
Traffic and Transportation Engineering
Publishing date:
2017-06-30

Info

Title:
Performance analysis of air suspension system of heavy truckwith semi-active fuzzy control
Author(s):
Nguyen Van Liem1 2 Zhang Jianrun1 Le Van Quynh2 Jiao Renqiang1 Liao Xin1
1School of Mechanical Engineering, Southeast University, Nanjing 211189, China
2Faculty of Automotive and Power Machinery Engineering, Thai Nguyen University of Technology, Thai Nguyen 23000, Vietnam
Keywords:
heavy truck dynamic model air suspension fuzzy logic control dynamic load coefficient
PACS:
U461.3
DOI:
10.3969/j.issn.1003-7985.2017.02.006
Abstract:
In order to analyze and evaluate the performance of the air suspension system of heavy trucks with semi-active fuzzy control, a three-dimensional nonlinear dynamical model of a typical heavy truck with 16-DOF(degree of freedom)is established based on Matlab/Simulink software. The weighted root-mean-square(RMS)acceleration responses of the vertical driver’s seat, the pitch and roll angle of the cab, and the dynamic load coefficient(DLC)are chosen as objective functions, and the air suspension system is optimized and analyzed by the semi-active fuzzy control algorithm when vehicles operate under different operation conditions. The results show that the influence of the roll angle of the cab on the heavy truck ride comfort is clear when vehicles move on the road surface conditions of the ISO level D and ISO level E at a velocity over 27.5 m/s. The weighted RMS acceleration responses of vertical driver’s seat, the pitch and roll angle of the cab are decreased by 24%, 30% and 25%, respectively, when vehicles move on the road surface condition of the ISO level B at a velocity of 20 m/s. The value of the DLC also significantly decreases when vehicles operate under different operation conditions. Particularly, the DLC value of the tractor driver axle is greatly reduced by 27.4% when the vehicle operates under a vehicle fully-loaded condition on the road surface condition of ISO level B at a velocity of 27.5 m/s.

References:

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Memo

Memo:
Biographies: Nguyen Van Liem(1986—), male, graduate; Zhang Jianrun(corresponding author), male, doctor, professor, zhangjr@seu.edu.cn.
Foundation items: The Science and Technology Support Program of Jiangsu Province(No.BE2014133), the Prospective Joint Research Program of Jiangsu Province(No.BY2014127-01).
Citation: Nguyen Van Liem, Zhang Jianrun, Le Van Quynh, et al. Performance analysis of air suspension system of heavy truck with semi-active fuzzy control[J].Journal of Southeast University(English Edition), 2017, 33(2):159-165.DOI:10.3969/j.issn.1003-7985.2017.02.006.
Last Update: 2017-06-20