DocumentCode :
3083303
Title :
Research on Maximum Road Adhesion Coefficient Estimation for Distributed Drive Electric Vehicle
Author :
Mingyuan Bian ; Long Chen ; Yugong Luo ; Keqiang Li
Author_Institution :
State Key Lab. of Automotive Safety & Energy, Tsinghua Univ., Beijing, China
fYear :
2013
fDate :
21-23 July 2013
Firstpage :
90
Lastpage :
94
Abstract :
In consideration the drawbacks of some existing road adhesion coefficient estimation methods, a maximum road friction estimation method was proposed in this paper based on the model reconstruction principles, which fully took the advantages that the wheel dynamic parameters of distributed drive electric vehicle can be obtained accurately. The simplified tire model originated from magic formula for the evaluation of the longitudinal adhesion coefficient was analyzed, and the principles of the peak road adhesion coefficient estimation method based on model reconstruction were illustrated. Vehicle dynamics simulation model and a road peak adhesion coefficient estimator were established on the platform of CarSim and MATLAB / Simulink, and dynamic simulation works were done under various driving conditions. The simulation results showed that this method had better robustness, higher estimation accuracy and shorter convergence time, which verified the effectiveness of the proposed algorithm.
Keywords :
adhesion; automotive components; electric vehicles; estimation theory; friction; mechanical engineering computing; roads; tyres; vehicle dynamics; wheels; CarSim; MATLAB/Simulink; convergence time; distributed drive electric vehicle; driving conditions; estimation accuracy; longitudinal adhesion coefficient; maximum road adhesion coefficient estimation; maximum road friction estimation method; model reconstruction principles; peak road adhesion coefficient estimation method; road peak adhesion coefficient estimator; robustness; tire model; vehicle dynamics simulation model; wheel dynamic parameters; Adhesives; Estimation; Friction; Mathematical model; Roads; Vehicle dynamics; Wheels; Adhesion coefficient; Model reconstruction; Road friction; Tire model; electric vehicle;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mechanical and Automation Engineering (MAEE), 2013 International Conference on
Conference_Location :
Jiujang
Type :
conf
DOI :
10.1109/MAEE.2013.32
Filename :
6602145
Link To Document :
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