The Impact of Hybrid Energy Storage System on the Battery Cycle Life of Replaceable Battery Electric Vehicle

Author:

Zhang Wei1ORCID,Yang Jue2ORCID

Affiliation:

1. School of Mechanical Engineering, Anhui Science and Technology University, Chuzhou 233100, China

2. School of Mechanical Engineering, University of Science and Technology Beijing, Beijing 100083, China

Abstract

Compared with batteries, ultracapacitors have higher specific power and longer cycle life. They can act as power buffers to absorb peak power during charging and discharging, playing a role in peak shaving and valley filling, thereby extending the cycle life of the battery. In this article, a replaceable battery electric coupe SUV equipped with a lithium iron phosphate (LiFePO4) power battery is taken as the research object, and a vehicle dynamics simulation model is established on the MATLAB/Simulink platform. Parameter matching and control optimization for a hybrid energy storage system (HESS) are conducted. Through a proven semiempirical cycle model of the LiFePO4 power battery, the operating cycle life model is derived and used to estimate the battery cycle life. World Light Vehicle Test Cycle (WLTC) simulation results show that the HESS with 308 ultracapacitors can extend the cycle life of the LiFePO4 power battery by 34.24%, thus significantly reducing the operation cost of the battery replacement station.

Funder

Key Natural Science Research Projects in Higher Education Institutions in Anhui Province

Publisher

MDPI AG

Subject

Automotive Engineering

Reference29 articles.

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4. Praveena, K.P.S., Jayalakshmi, N.S., and Kedlaya, A. (2020, January 2–4). Energy Management Strategies for Hybrid Energy Storage System in Electric Vehicles: A Review. Proceedings of the 2020 IEEE International Conference on Electronics, Computing and Communication Technologies (CONECCT), Bangalore, India.

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