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Cascaded H-Bridge MLI and Three-Phase Cascaded VSI Topologies for Grid-Connected PV Systems with Distributed MPPT

机译:具有分布式MPPT的级联H-Bridge MLI和三相级联VSI拓扑,用于网格连接的PV系统

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摘要

Cascaded multilevel inverter topologies have received a great deal of attention for grid-connected PV systems. In this paper, three-cascaded multilevel inverter configurations are proposed for grid-connected PV applications. These are the three-phase cascaded H-bridge multilevel inverter topology, three-phase cascaded voltage-source inverter topology using inductors, and three-phase cascaded voltage-source inverter topology using coupled transformers. Distributed maximum power point tracking (MPPT) of PV modules using perturbation and observation algorithm is used for all presented topologies. In all presented configurations, each PV module is connected to one DC-DC isolated Cuk converter for best MPPT achievement. Simulation is achieved by using the SIMULINK environment. The simulation results show that the three proposed topologies function well in improving the grid's power quality. The grid currents are kept in phase with the grid voltage to ensure unity power factor, and the THD of the grid currents are within the acceptable range. The proposed topologies are experimentally implemented in the lab, and the switching pulses are generated with the help of the MicroLabBox data acquisition system. Comparing the three topologies according to the number of switches, voltage, and current stresses on switches and THD of the generated voltages and grid currents and according to the efficiency has been achieved in this paper, both experimentally and by simulation. The simulation and experimental results and comparisons are presented to verify the proposed topologies' effectiveness and reliability.
机译:级联的多级逆变器拓扑对网格连接的光伏系统有大量的关注。本文提出了三级级联的多级逆变器配置,用于网格连接的PV应用。这些是三相级联的H桥多级逆变器拓扑,使用电感器和三相级联电压源逆变器拓扑,以及使用耦合变压器的三相级联电压源逆变器拓扑。使用扰动和观察算法的PV模块的分布式最大功率点跟踪(MPPT)用于所有呈现的拓扑。在所有呈现的配置中,每个PV模块连接到一个DC-DC隔离CUK转换器,以获得最佳MPPT成就。通过使用Simulink环境实现模拟。仿真结果表明,三种提出的拓扑功能在提高电网的电力质量方面是良好的。电网电流与电网电压保持相位,以确保unity功率因数,并且电流电流的THD在可接受的范围内。所提出的拓扑在实验中在实验室中实现,并且在MicroLabBox数据采集系统的帮助下产生开关脉冲。根据开关,电压和电流应力的数量比较三个拓扑以及所产生的电压和电流电流的THD,并且根据本文在实验和通过仿真中实现了效率。提出了模拟和实验结果和比较,以验证所提出的拓扑效果和可靠性。

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