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Multi-Module DC-DC Converter-based Fast Chargers for Neighborhood Electric Vehicles

机译:基于多模块DC-DC转换器的邻域电动车辆的快速充电器

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To allow a wide adoption of Neighborhood Electric Vehicles (NEVs), low-speed EVs, the EV battery's fast recharging is necessary. This will further increase the utilization of EVs due to the reduced charging duration. To achieve fast recharging, several studies have introduced advanced power electronics technologies to allow wider acceptance for EVs by the public. Among these power electronics conversion systems, the DC-DC conversion stage plays an essential role in supplying energy to the EV via charging the EV's battery. Accordingly, in this paper, a multi-module Input-Series Output-Parallel (ISOP) DC-DC converter is presented for NEVs. The multi-module ISOP DC-DC converter is Dual Active Bridge (DAB) based topology. Unlike the conventional ISOP DC-DC converter, only one H-bridge is employed at the input side, while the intermediate high-frequency transformer and the H-bridge employed at the output side are of modular structure. Since only one bridge with a single capacitor is used at the input side, the power balance between the employed DAB units is accomplished via direct output current sharing, where stability is ensured without using the input voltage sharing control approach. Two Matlab/Simulink model is presented to verify the presented concept using reflex charging algorithm, where the first model uses the small-signal model to present the behavior of the converter under transient condition, while the other Matlab/Simulink model is time-domain based simulation. The controller is tested using three DAB units with parameter mismatch where each unit is rated at 1. 5 kW to achieve an overall power of 4. 5 kW.
机译:为允许广泛采用邻里电动车(内部),低速EVS,EV电池的快速再充电是必要的。由于降低的充电持续时间,这将进一步提高EV的利用率。为实现快速充电,几项研究引入了先进的电力电子技术,以便广泛对EVS更广泛的接受。在这些电力电子转换系统中,DC-DC转换级在向EV充电的电池中向EV供给EV来发挥重要作用。因此,在本文中,为NEV提供了一种多模块输入串联输出并联(ISOP)DC-DC转换器。多模块ISOP DC-DC转换器是基于双极的桥(DAB)拓扑。与传统的ISOP DC-DC转换器不同,输入侧仅采用一个H桥,而在输出侧采用的中间高频变压器和在输出侧采用的H桥具有模块化结构。由于在输入侧仅使用具有单个电容器的一个桥,因此通过直接输出电流共享完成所采用的DAB单元之间的功率平衡,而在不使用输入电压共享控制方法的情况下确保稳定性。提出了两个MATLAB / SIMULINK模型以验证所提出的概念,使用反射充电算法,其中第一模型使用小信号模型在瞬态条件下呈现转换器的行为,而其他MATLAB / SIMULINK模型是基于时域的模拟。使用三个DAB单位测试控制器,其中每个单位均被额定为1.5 kW,以实现4. 5 kW的整体功率。

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