Efficiency Improvement of Regenerative Energy for an EV

Author:

Yabe Takuya,Akatsu Kan,Okui Nobunori,Niikuni Tetsuya,Kawai Terunao

Abstract

Electric Vehicles (EVs) and various Hybrid Electric Vehicles (HEVs) have been attracting a lot of attention for environmental issues and energy crisis. One of advantages of using foregoing vehicles is charging energy by the regenerative brake. The running distance by one electric charge is increased a lot by the regenerative brake. However, the absorbed capacity of the regenerative energy is limited because of the motor capacity and the current limit of the battery. As a result not only the regenerative electric brake but also the mechanical brake must be used. This becomes serious issue in the heavy weight vehicle such as the bus and the truck, the effectiveness of EV/HEV is not obtained. To increase the regenerative energy, the large motor and the battery are requested, however, it is very difficult because of the cost and the limit of the inverter capacity. In this paper, it is verified that the regenerative energy is increased by improving a braking method, averaging the deceleration, without changing the power train system. The proposed method is experimentally evaluated by i-MiEV on the dynamo system, and increases the regenerative energy to 18%.

Publisher

MDPI AG

Subject

Automotive Engineering

Cited by 9 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Long Downhill Braking and Energy Recovery of Pure Electric Commercial Vehicles;World Electric Vehicle Journal;2024-02-05

2. Enhancement Simulation of Electric Vehicle Regenerative Brake System;2023 IEEE 4th International Multidisciplinary Conference on Engineering Technology (IMCET);2023-12-12

3. Unified Net Willans Line Model for Estimating the Energy Consumption of Battery Electric Vehicles;SAE International Journal of Advances and Current Practices in Mobility;2023-04-11

4. The analysis of energy recovered by an electric vehicle during selected braking manoeuvres;The Archives of Automotive Engineering – Archiwum Motoryzacji;2023-03-31

5. Optimal Deceleration Zone of EV with an Improved Parallel Regenerative Braking System;2023 International Conference on Power, Instrumentation, Energy and Control (PIECON);2023-02-10

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