电动汽车的混合能源存储系统和电池管理

Sangyoung Park, Younghyun Kim, N. Chang
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引用次数: 50

摘要

电动汽车(EV)因其低碳排放被认为是内燃机汽车的有力替代品。然而,它们的实际效益尚未得到明确验证,而能源效率可以在许多方面得到提高。如果用石油发电厂的电力为电动汽车充电,由于发电、传输、转换和充电过程中的功率损耗,电动汽车的碳排放效益将大大降低。另一方面,再生制动是将能量从车轮直接转换到电池的过程,是提高电动汽车能效的重要过程之一。混合储能系统(HESS)可以降低再生制动过程中的功率损失,使超级电容器在电池倍率小的情况下接受高功率。传统的充电管理不能系统地在超级电容器和电池之间交换电荷。然而,加速和减速以及电池充放电能力的不对称性使得超级电容器的充电状态(SoC)管理凌驾于效率优化之上。与以前的工作不同,我们展示了在空闲和巡航/停止时间期间电荷迁移如何在能源效率和巡航范围方面有益。系统电荷迁移将SoC管理和充电效率优化解耦,为充电效率优化提供了更高的自由度。我们证明了所提出的超级电容器和电池之间的电荷迁移将能源效率提高了19.4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid energy storage systems and battery management for electric vehicles
Electric vehicles (EV) are considered as a strong alternative of internal combustion engine vehicles expecting lower carbon emission. However, their actual benefits are not yet clearly verified while the energy efficiency can be improved in many ways. The carbon emission benefits from EV is largely diminished if we charge EV with electricity from petroleum power plants due to power loss during generation, transmission, conversion and charging. On the other hand, regenerative braking is direct power conversion from the wheel to battery and one of the most important processes that can enhance energy efficiency of EV. Power loss during regenerative braking can be reduced by hybrid energy storage system (HESS) such that super-capacitors accept high power as batteries have small rate capability. Conventional charge management does not systematically exchange charge between the supercapacitor and battery. However, asymmetry in acceleration and deceleration as well as battery charging and discharging capability make the supercapacitor state of charge (SoC) management override the efficiency optimization. Unlike previous works, we show how charge migration during idle and cruise/stopping time can be beneficial in terms of energy efficiency and cruise range. Systematic charge migration decouples SoC management and charging efficiency optimization giving a higher degree of freedom to charging efficiency optimization. We demonstrate the proposed charge migration between the supercapacitor and battery improves energy efficiency by 19.4%.
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