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首页> 外文期刊>IEEE Transactions on Industrial Electronics >Ultracapacitor-Based Auxiliary Energy System for an Electric Vehicle: Implementation and Evaluation
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Ultracapacitor-Based Auxiliary Energy System for an Electric Vehicle: Implementation and Evaluation

机译:基于超级电容器的电动汽车辅助能源系统:实施和评估

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摘要

In the search for better efficiency, an auxiliary energy system (AES) for electric vehicles (EVs) was designed, implemented, and tested. The system, which is composed of an ultracapacitor bank and a buck–boost converter, was installed in an EV, which is powered by a lead-acid battery pack and a 54-kW brushless dc motor. Two control strategies where developed: one based on heuristics and the other based on an optimization model using neural networks. These strategies were translated to algorithms and implemented in a digital signal processor, and their performance was evaluated in urban driving. The results were incorporated to an economic evaluation of the system, which shows that the reduction in costs would only justify the inclusion of this type of system in a lead-acid battery-powered vehicle if the battery life is extended by 50% or more, which is unlikely. The same results were extrapolated to a case in which the lead-acid batteries are replaced by a fuel cell. In this case, the costs of different power support systems were evaluated, such as ultracapacitors and high-specific-power lithium-based batteries. The results showed a significant cost reduction when AES configurations are included in contrast to a system powered by fuel cells only. Also, the cost reduction was higher when using ultracapacitors for this purpose.
机译:为了提高效率,设计,实施和测试了电动汽车(EV)的辅助能源系统(AES)。该系统由超级电容器组和降压-升压转换器组成,安装在电动汽车中,电动汽车由铅酸电池组和54 kW无刷直流电动机供电。开发了两种控制策略:一种基于启发式,另一种基于使用神经网络的优化模型。这些策略被转换为算法并在数字信号处理器中实现,并在城市驾驶中评估了它们的性能。将结果纳入系统的经济评估,结果表明,只有将电池寿命延长50%或更多,降低成本才能证明在铅酸电池供电的车辆中采用这种系统是合理的,这不太可能。对于将铅酸电池替换为燃料电池的情况,可以推论相同的结果。在这种情况下,评估了不同电源支持系统的成本,例如超级电容器和高比功率锂基电池。结果表明,与仅由燃料电池驱动的系统相比,包括AES配置时,可显着降低成本。同样,当为此目的使用超级电容器时,成本降低更高。

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