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Analysis and design of a mixed-mode controlled push-pull boost power factor corrector

机译:混合模式控制推挽升压功率因数校正器的分析和设计

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A novel mixed-mode controlled push-pull power factor corrector (PFC) composed of two boost-type PFCs with a coupled inductor is proposed in this paper. Besides possessing the capability of sharing the input current and output current equally, integrating two boost inductors into one magnetic core makes the operating frequency of the core double the switching frequency. The circuit volume and the current ripple can be thus reduced under the same inductance. Therefore, both the power factor (PF) value and the power density are increased. In addition, a cut-in-half duty cycle can reduce the conduction losses of the switches and both the turns and diameters of the inductor windings. Both the continuous conduction mode (CCM) and the transition mode (TM) controls are fulfilled in the proposed PFC during one line frequency cycle. The durations of these two modes depend on both the line voltage and the output load due to the pre-set fixed off-time (FOT). Under CCM operations, the smaller inductor current ripple reduces both the core loss of the coupled inductor and the conduction losses of the switches, which not only promotes the heavy-load efficiencies, but also alleviates the current stresses of the switches and the output diodes. Under TM operations, quasi-resonant (QR) valley-switching on the switches and zero-current-switching (ZCS) of the output diodes can reduce the switching losses. The light-load conversion efficiencies are thus improved. Detailed analysis and design procedures of the proposed topology are given. Simulations and experiments are conducted on a prototype with a universal line voltage, a 380-V output DC voltage, and a 300-W output power to verify its feasibility.
机译:提出了一种新颖的混合模式控制推挽功率因数校正器(PFC),该校正器由两个升压型PFC和一个耦合电感组成。除了具有均分输入电流和输出电流的能力之外,将两个升压电感器集成到一个磁芯中还使该芯的工作频率是开关频率的两倍。因此,在相同的电感下可以减小电路体积和电流纹波。因此,功率因数(PF)值和功率密度都增加了。此外,半切占空比可以减少开关的传导损耗,并减少电感绕组的匝数和直径。在一个线路频率周期内,建议的PFC中同时实现了连续传导模式(CCM)和过渡模式(TM)的控制。由于预设的固定关断时间(FOT),这两种模式的持续时间取决于线路电压和输出负载。在CCM操作下,较小的电感器电流纹波可同时减小耦合电感器的铁心损耗和开关的传导损耗,这不仅提高了重载效率,而且减轻了开关和输出二极管的电流应力。在TM操作下,开关上的准谐振(QR)谷底开关和输出二极管的零电流开关(ZCS)可以减少开关损耗。因此,提高了轻负载转换效率。给出了拟议拓扑的详细分析和设计过程。在具有通用线路电压,380 V输出DC电压和300 W输出功率的原型上进行了仿真和实验,以验证其可行性。

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