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Range Extension of Electric Vehicles through Improved Battery Capacity Utilization: Potentials, Risks and Strategies

机译:通过提高电池容量利用率来扩大电动汽车的行驶里程:潜力,风险和策略

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Among the biggest challenges battery electric vehicles (BEVs) face is their limited range and higher price compared to conventionally powered vehicles. One underlying reason is the operation strategy of the battery pack. To reduce aging and avoid deep discharge, state of the art battery management employs strict and conservative operational limits, leaving a significant amount of energy in the battery unused, directly translating into a loss of possible range. Additionally, this strategy leads to a sudden and, for the driver unpredictable, power derating at a low state-of-charge (SOC). This paper proposes an approach for defining the operational limits of the vehicle's battery and a strategy for using most of the available capacity and power at a low SOC, increasing the vehicle's capabilities with no additional hardware. The benefits of this approach are shown by a theoretical assessment of selected BEVs. The limitations of current implementations are analyzed by an experimental study of a Volkswagen e-Golf on a chassis dynamometer and under real driving conditions. The impact of an extension of the battery's operational limits is discussed with a study of relevant literature and supported by measurements of lithium-ion battery behavior. The strategies presented in this paper are implemented, simulated and evaluated under consideration of the behavior of a single cell within the battery pack, as well as the whole electric drivetrain.
机译:电动汽车(BEV)面临的最大挑战之一是与传统动力汽车相比,其续航里程有限且价格较高。根本原因之一是电池组的操作策略。为了减少老化并避免深度放电,现有技术的电池管理采用严格和保守的操作限制,使电池中的大量能量未被使用,直接转化为可能范围的损失。此外,这种策略会导致突然发生,并且对于驾驶员来说是不可预测的,因此会在低电量状态(SOC)下降低功率。本文提出了一种定义车辆电池运行极限的方法,以及一种在低SOC下使用大部分可用容量和功率,无需增加额外硬件即可提高车辆性能的策略。对某些BEV的理论评估表明了这种方法的优势。通过在底盘测功机上和实际驾驶条件下对大众e-Golf进行的实验研究,分析了当前实施方式的局限性。通过相关文献的研究讨论了延长电池运行极限的影响,并通过锂离子电池性能的测量来支持。本文中提出的策略是在考虑到电池组中单个电池以及整个电动传动系统的性能的情况下实施,模拟和评估的。

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