Department of Engineering Sciences, Universidad Andres Bello, Santiago 7500971, Chile.
Department of Electromechanics and Energy Conversion, Universidad de Talca, Curicó 3340000, Chile.
Sensors (Basel). 2021 Aug 25;21(17):5712. doi: 10.3390/s21175712.
This work presents a novel dc-dc bidirectional buck-boost converter between a battery pack and the inverter to regulate the dc-bus in an electric vehicle (EV) powertrain. The converter is based on the versatile buck-boost converter, which has shown an excellent performance in different fuel cell systems operating in low-voltage and hard-switching applications. Therefore, extending this converter to higher voltage applications such as the EV is a challenging task reported in this work. A high-efficiency step-up/step-down versatile converter can improve the EV powertrain efficiency for an extended range of electric motor (EM) speeds, comprising urban and highway driving cycles while allowing the operation under motoring and regeneration (regenerative brake) conditions. DC-bus voltage regulation is implemented using a digital two-loop control strategy. The inner feedback loop is based on the discrete-time sliding-mode current control (DSMCC) strategy, and for the outer feedback loop, a proportional-integral (PI) control is employed. Both digital control loops and the necessary transition mode strategy are implemented using a digital signal controller TMS320F28377S. The theoretical analysis has been validated on a 400 V 1.6 kW prototype and tested through simulation and an EV powertrain system testing.
本工作提出了一种新型的电池组和逆变器之间的直流-直流双向降压-升压转换器,用于调节电动汽车(EV)动力传动系统中的直流母线。该转换器基于通用的降压-升压转换器,在低电压和硬开关应用中的不同燃料电池系统中表现出了优异的性能。因此,将该转换器扩展到更高的电压应用,如电动汽车,是本工作中报告的一项具有挑战性的任务。高效率的升降压通用转换器可以提高电动汽车动力传动系统的效率,适用于包括城市和高速公路驾驶循环在内的宽范围的电动机(EM)速度,同时允许在电动和再生(再生制动)条件下运行。直流母线电压调节采用数字双环控制策略。内环反馈基于离散时间滑模电流控制(DSMCC)策略,而外环反馈则采用比例积分(PI)控制。数字控制环和必要的过渡模式策略都使用数字信号控制器 TMS320F28377S 实现。理论分析已在 400 V 1.6 kW 原型上进行了验证,并通过仿真和电动汽车动力传动系统测试进行了测试。