Design of a bidirectional EV charger using unit template-based current-controlled synchronous reference frame hysteresis

Ambuli B. R. Etemesi, T. Megahed, Haruichi Kanaya, D. Mansour
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Abstract

Existing distribution networks were not designed with large-scale electric vehicle (EV) charging infrastructure in mind. Integrating EV charging stations with the distribution grid might lead to power quality (PQ) issues at the point of common coupling (PCC). This work proposes a two-mode, unit template-based synchronous reference frame hysteresis current-controlled (SRF-HCC) three-phase Level 2 EV charger. Mode one focuses on charging the EV battery from the grid (G2V) and utilizes current and voltage control techniques to enhance battery life and performance. Whereas mode two enables the EV’s stored energy to be discharged to the grid (V2G) by the EV user, allowing the sale of power to support the transient effect of the grid voltage and frequency and enhancing the grid’s PQ. The HCC generates switching pulses for both the AC-DC and buck-boost converters. The SRF-based unit template-based control (SRF-UTC) method ensures system stability, voltage, and frequency regulation for power exchange with the grid by combining its efficiency with that of the HCC. The EV charger proposal comprises three primary components: a 3-phase bidirectional AC-DC converter, a bidirectional buck-boost converter, and a filter circuit. The proposed system was modeled using MATLAB/Simulink and evaluated in two case studies to assess its performance.
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利用基于单元模板的电流控制同步参考帧滞后设计双向电动汽车充电器
现有配电网络在设计时并未考虑大规模电动汽车 (EV) 充电基础设施。将电动汽车充电站与配电网集成可能会导致共耦点(PCC)的电能质量(PQ)问题。本研究提出了一种基于单元模板的双模式同步参考帧磁滞电流控制(SRF-HCC)三相二级电动汽车充电器。模式一侧重于从电网(G2V)为电动汽车电池充电,并利用电流和电压控制技术提高电池寿命和性能。而模式二则是由电动汽车用户向电网(V2G)放出电动汽车储存的能量,从而实现电力销售,以支持电网电压和频率的瞬态效应,并提高电网的 PQ。HCC 可为交流-直流转换器和降压-升压转换器产生开关脉冲。基于 SRF 单元模板的控制(SRF-UTC)方法通过将其效率与 HCC 的效率相结合,确保系统稳定性、电压和频率调节,从而实现与电网的电力交换。电动汽车充电器方案包括三个主要组件:一个三相双向交直流转换器、一个双向降压-升压转换器和一个滤波电路。建议的系统使用 MATLAB/Simulink 建模,并在两个案例研究中进行了评估,以评估其性能。
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