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Analysis and Design of DCM Operated Bridgeless Buck-Boost Derived PFC Converter for Plug-in Charging Application

机译:DCM操作的DCM操作桥梁-Boost导出的PFC转换器的分析与设计,用于插入式充电应用

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A novel bridgeless buck-boost derived converter is proposed with less number of semiconductor devices for onboard EV charging application. Proposed charger operates in discontinuous inductor current mode benefiting limited components for its operation and achieves natural power factor correction (PFC) at adjustable grid input supply. Also, grid input voltage and current sensing are not necessary making the charger cost effective, and rugged to high-frequency noise. Correspondingly, the control becomes simple with the use of one voltage sensor and requires only one control loop. Moreover, as the converters have fewer semiconductor devices the voltage stress on the devices is also reduced in comparison with traditional bridgeless topologies. This consequently reduces the switching losses in the semiconductor devices and meliorates gross efficiency. Furthermore, the presence of only one semiconductor device in the current flowing path over a switching cycle greatly reduces the conduction losses while also facilitates the eases of thermal management. A comprehensive steady-state analysis over one switching sequence and the design equation is presented. The proposed EV charger analysis and the design are confirmed with the simulation and experimental results which uphold the design of the proposed converter.
机译:提出了一种新颖的无聊降压-Boost导出转换器,具有较少数量的用于板载EV充电应用的半导体器件。所提出的充电器在不连续电感器电流模式下运行,可用于其操作的有限元件,并在可调电网输入供应下实现天然功率因数校正(PFC)。此外,网格输入电压和电流检测不需要使充电器成本有效,并崎岖到高频噪声。相应地,随着一个电压传感器的使用并且仅需要一个控制回路,控制变得简单。此外,随着转换器具有较少的半导体器件,与传统的无限拓扑相比,设备上的电压应力也降低。这因此降低了半导体器件中的开关损耗并使总效率过高。此外,在开关循环上仅在电流流动路径中仅存在一个半导体器件,极大地降低了导电损耗,同时还有利于热管理的简化。介绍了一个开关序列和设计方程的全面稳态分析。建议的EV充电器分析和设计通过仿真和实验结果来确认,坚持所提出的转换器的设计。

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