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Power Flow Control in Multi-Active-Bridge Converters: Theories and Applications

机译:多功能桥式转换器中的电源流量控制:理论和应用

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This paper investigates the theories and applications of power flow control in multi-active-bridge (MAB) power converters. Many emerging applications including differential power processing, low voltage power delivery in smart homes, multi-cell battery balancers, and photovoltaic energy systems comprise sophisticated power flow across multiple dc voltage ports. Connecting many dc voltage ports together with a MAB converter reduces the power conversion stress, improves the efficiency and enhances the power density. Fundamentally, the advantages of a MAB design come from merging many standalone magnetic components with simple functions into one single magnetic component that performs sophisticated functions. Three control strategies for MAB converters, including phase-shift (PS) control, time-sharing (TS) control, and hybrid phase-shift and time-sharing (PSTS) control are developed to regulate the voltage and precisely control the power flow. A four-port MAB converter prototype designed for low voltage power delivery applications in future smart homes has been built and tested to compare the performance of the three control methods and verify the effectiveness of the proposed architecture.
机译:本文调查了多主动桥(MAB)电源转换器中电流控制的理论和应用。许多新兴应用程序包括差动功率处理,智能房屋中的低压电力输送,多电池电池平衡器和光伏能量系统包括跨多个直流电压端口的复杂功率流。将许多直流电压端口与MAB转换器一起降低电源转换应力,提高了效率并增强了功率密度。从根本上,MAB设计的优点来自许多独立的磁性部件,以简单的功能分为一个执行复杂功能的单个磁性分量。 MAB转换器的三种控制策略,包括相移(PS)控制,时间共享(TS)控制和混合相移和时间共享(PSTS)控制以调节电压并精确地控制电力流量。已经建立并测试了一个用于未来智能家庭的低压电源输送应用的四端口MAB转换器原型,以比较三种控制方法的性能,并验证所提出的架构的有效性。

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