TY - JOUR
T1 - An integrated control strategy for the composite braking system of an electric vehicle with independently driven axles
AU - Sun, Fengchun
AU - Liu, Wei
AU - He, Hongwen
AU - Guo, Hongqiang
N1 - Publisher Copyright:
© 2016 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2016/8/2
Y1 - 2016/8/2
N2 - For an electric vehicle with independently driven axles, an integrated braking control strategy was proposed to coordinate the regenerative braking and the hydraulic braking. The integrated strategy includes three modes, namely the hybrid composite mode, the parallel composite mode and the pure hydraulic mode. For the hybrid composite mode and the parallel composite mode, the coefficients of distributing the braking force between the hydraulic braking and the two motors' regenerative braking were optimised offline, and the response surfaces related to the driving state parameters were established. Meanwhile, the six-sigma method was applied to deal with the uncertainty problems for reliability. Additionally, the pure hydraulic mode is activated to ensure the braking safety and stability when the predictive failure of the response surfaces occurs. Experimental results under given braking conditions showed that the braking requirements could be well met with high braking stability and energy regeneration rate, and the reliability of the braking strategy was guaranteed on general braking conditions.
AB - For an electric vehicle with independently driven axles, an integrated braking control strategy was proposed to coordinate the regenerative braking and the hydraulic braking. The integrated strategy includes three modes, namely the hybrid composite mode, the parallel composite mode and the pure hydraulic mode. For the hybrid composite mode and the parallel composite mode, the coefficients of distributing the braking force between the hydraulic braking and the two motors' regenerative braking were optimised offline, and the response surfaces related to the driving state parameters were established. Meanwhile, the six-sigma method was applied to deal with the uncertainty problems for reliability. Additionally, the pure hydraulic mode is activated to ensure the braking safety and stability when the predictive failure of the response surfaces occurs. Experimental results under given braking conditions showed that the braking requirements could be well met with high braking stability and energy regeneration rate, and the reliability of the braking strategy was guaranteed on general braking conditions.
KW - Electric vehicles
KW - composite braking strategy
KW - energy regeneration rate
KW - response surface
KW - uncertainty optimisation
UR - http://www.scopus.com/inward/record.url?scp=84965082186&partnerID=8YFLogxK
U2 - 10.1080/00423114.2016.1180404
DO - 10.1080/00423114.2016.1180404
M3 - Article
AN - SCOPUS:84965082186
SN - 0042-3114
VL - 54
SP - 1031
EP - 1052
JO - Vehicle System Dynamics
JF - Vehicle System Dynamics
IS - 8
ER -