TY - JOUR
T1 - RESEARCH ON FUEL CONSUMPTION REDUCTION STRATEGY OF 48V MILD HYBRID ELECTRIC VEHICLE
AU - Zhichao, Zheng
AU - Jinrui, Nan
AU - Huihui, Zou
AU - Bolan, Liu
N1 - Publisher Copyright:
© 2019 ICAE.
PY - 2019
Y1 - 2019
N2 - The introduction of the fourth-stage fuel limit standard and the national VI emission standard has accelerated the development of more energy-efficient and environmentally friendly new energy vehicles by Chinese automakers. Currently, the 48V mild-hybrid system is one of the most effective technical solutions for the easy technology development, low cost, short development cycle, energy saving and emission reduction. In this paper, the 48V mild-hybrid vehicle is taken as the research object. Through the comparative analysis, the architecture of the 48V mild-hybrid system, the type of the battery and motor are determined. The external characteristics of motor are obtained by bench experiment and the battery model parameters are obtained by offline identification. Aiming at the research focus of the thesis, a single-target optimization strategy based on threshold is proposed, including engine start-stop, power assisting, brake regeneration and SOC balance and the strategy model is built in Simulink. The 48V mild-hybrid vehicle model and the original vehicle model are built in the Cruise software. The co-simulation of the vehicle model and strategy model is achieved by calling the strategy model’s DLL file. The results show that compared with the original vehicle, the ratio of fuel economy improvement of the 48V mild-hybrid vehicle is more than 10%, the acceleration performance is increased by 9.7%, the climbing performance is improved by 23%, and the emission performance improvement effect is remarkable. Also, the proposed control strategy is better in reducing vehicle fuel consumption and maintaining battery SOC balance compared with the control strategy based on logic threshold.
AB - The introduction of the fourth-stage fuel limit standard and the national VI emission standard has accelerated the development of more energy-efficient and environmentally friendly new energy vehicles by Chinese automakers. Currently, the 48V mild-hybrid system is one of the most effective technical solutions for the easy technology development, low cost, short development cycle, energy saving and emission reduction. In this paper, the 48V mild-hybrid vehicle is taken as the research object. Through the comparative analysis, the architecture of the 48V mild-hybrid system, the type of the battery and motor are determined. The external characteristics of motor are obtained by bench experiment and the battery model parameters are obtained by offline identification. Aiming at the research focus of the thesis, a single-target optimization strategy based on threshold is proposed, including engine start-stop, power assisting, brake regeneration and SOC balance and the strategy model is built in Simulink. The 48V mild-hybrid vehicle model and the original vehicle model are built in the Cruise software. The co-simulation of the vehicle model and strategy model is achieved by calling the strategy model’s DLL file. The results show that compared with the original vehicle, the ratio of fuel economy improvement of the 48V mild-hybrid vehicle is more than 10%, the acceleration performance is increased by 9.7%, the climbing performance is improved by 23%, and the emission performance improvement effect is remarkable. Also, the proposed control strategy is better in reducing vehicle fuel consumption and maintaining battery SOC balance compared with the control strategy based on logic threshold.
KW - 48V mild-hybrid vehicle
KW - control strategy
KW - Cruise
KW - dynamic performance
KW - energy saving and emission reduction
UR - http://www.scopus.com/inward/record.url?scp=85202592194&partnerID=8YFLogxK
U2 - 10.46855/energy-proceedings-2083
DO - 10.46855/energy-proceedings-2083
M3 - Conference article
AN - SCOPUS:85202592194
SN - 2004-2965
VL - 3
JO - Energy Proceedings
JF - Energy Proceedings
T2 - 11th International Conference on Applied Energy, ICAE 2019
Y2 - 12 August 2019 through 15 August 2019
ER -