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A state of art review and challenges with impedance networks topologies

机译:阻抗网络拓扑的最新发展和挑战

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Inductors and diodes in combination with active switches are the basic building blocks of dc-dc converters. When the active switches are gated on then inductors are charged in series and when the switch is off, inductors are discharged in parallel. The principle of these switched inductor topologies are basic building blocks of impedance network topologies. In these topologies, the inverter zero state switching stage is used to make the inductor charged and discharged. Thus a unique impedance network is designed to boost the output. The Z-source inverter is an example of such type of topologies. The impedance network of Z-source inverter is designed to couple the inverter main circuit to input power source. But it has limitations of high voltage stress across the switches. Over the years, numerous other topologies such as quasi-Z-source inverter, improved Z-Source Inverter etc. have been implemented to improve limitations of Z-source inverter and to make it more suitable for the renewable energy applications. This review presents the comparisons of impedance network topologies on their basic structural differences, advantages and limitations along with dc link voltages and boost factor. MATLAB/Simulink is chosen for verification of the analysis made.
机译:电感器和二极管与有源开关的组合是DC-DC转换器的基本组成部分。当有源开关被选通时,电感器被串联充电,而当开关断开时,电感器被并联放电。这些开关电感器拓扑的原理是阻抗网络拓扑的基本构建块。在这些拓扑中,逆变器零状态开关级用于使电感器充电和放电。因此,设计了独特的阻抗网络来提高输出。 Z源逆变器就是此类拓扑的一个示例。 Z源逆变器的阻抗网络旨在将逆变器主电路耦合到输入电源。但是它具有开关两端的高压应力的局限性。多年来,已经实现了许多其他拓扑,例如准Z源逆变器,改进的Z源逆变器等,以改善Z源逆变器的局限性,使其更适合可再生能源应用。本文对阻抗网络拓扑的基本结构差异,优势和局限性以及直流链路电压和升压因子进行了比较。选择MATLAB / Simulink进行分析验证。

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