Control strategy for extreme conditions regenerative braking of a hybrid energy storage system for an electric vehicle

Khaled Itani, A. D. Bernardinis, Z. Khatir, A. Jammal, M. Oueidat
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引用次数: 11

Abstract

This paper presents the regenerative braking design control and simulation of a hybrid energy storage system (HESS) for an electric vehicle (EV). The EV is driven by two 30 kW permanent magnet synchronous motors. The HESS contains a Li-Ion battery and an Ultra-Capacitor (UC) sources. In extreme braking conditions, the UC should be able to recover all the power delivered by the motors. When the maximal state of charge of the UC is achieved, the energy will be then recuperated by the battery. The introduction of a braking resistor would help the system to respect the voltage and current constraints and to protect the battery. This paper will validate the combination of the designed controllers ensuring the switching between the storage and dissipative elements while respecting the electrical constraints of the overall system, in particular for critical braking conditions. A Simulink model will be developed and validated.
电动汽车混合储能系统极端工况再生制动控制策略
介绍了一种电动汽车混合储能系统的再生制动设计、控制与仿真。电动汽车由两台30千瓦的永磁同步电动机驱动。HESS包含一个锂离子电池和一个超级电容器(UC)源。在极端的制动条件下,UC应该能够恢复所有的动力传递的电机。当UC的最大充电状态达到时,能量将被电池回收。引入制动电阻将有助于系统尊重电压和电流的限制,并保护电池。本文将验证所设计的控制器的组合,确保存储和耗散元件之间的切换,同时尊重整个系统的电气约束,特别是在关键制动条件下。将开发和验证一个Simulink模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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