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Design and Implementation of Three-Phase Two-Stage Grid-Connected Module Integrated Converter

机译:三相两阶段并网模块集成变换器的设计与实现

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Module integrated converters (MICs) in single phase have witnessed recent market success due to unique features such as improved energy harvest, improved system efficiency, lower installation costs, plug-and-play operation, and enhanced flexibility and modularity. The MIC sector has grown from a niche market to mainstream, especially in the United States. Assuming further expansion of the MIC market, this paper presents the microinverter concept incorporated in large size photovoltaic (PV) installations such as megawatts (MW)-class solar farms where a three-phase ac connection is employed. A high-efficiency three-phase MIC with two-stage zero voltage switching (ZVS) operation for the grid-tied PV system is proposed which will reduce cost per watt, improve reliability, and increase scalability of MW-class solar farms through the development of new solar farm system architectures. The first stage consists of a high-efficiency full-bridge LLC resonant dc–dc converter which interfaces to the PV panel and produces a dc-link voltage. A center points iteration algorithm developed specifically for LLC resonant topologies is used to track the maximum power point of the PV panel. The second stage is comprised of a three-phase dc–ac inverter circuit which employs a simple soft-switching scheme without adding auxiliary components. The modeling and control strategy of this three-phase dc–ac inverter is described. Because the dc-link capacitor plays such an important role for dual-stage MIC, the capacitance calculation is given under type D voltage dip conditions. A 400-W prototype was built and tested. The overall peak efficiency of the prototype was measured and found to be 96% with 98.2% in the first stage and 98.3% in the second stage.
机译:单相模块集成转换器(MIC)由于具有独特的功能而获得了近期的市场成功,这些独特的功能包括提高能量收集,提高系统效率,降低安装成本,即插即用操作以及增强的灵活性和模块化。中等收入国家已从利基市场发展成为主流,尤其是在美国。假设MIC市场进一步扩大,本文提出了微逆变器概念,该概念已并入大型光伏(PV)装置中,例如采用三相交流电连接的兆瓦(MW)级太阳能农场。提出了一种适用于并网光伏系统的高效三相MIC,具有两级零电压开关(ZVS)操作,通过开发,将降低每瓦成本,提高可靠性并增加MW级太阳能发电场的可扩展性新的太阳能发电场系统架构。第一级由一个高效全桥LLC谐振dc-dc转换器组成,该转换器与PV面板连接并产生dc-link电压。专为LLC谐振拓扑开发的中心点迭代算法用于跟踪PV面板的最大功率点。第二阶段由三相dc-ac逆变器电路组成,该电路采用简单的软开关方案而无需添加辅助组件。描述了这种三相直流-交流逆变器的建模和控制策略。由于直流环节电容器在双级MIC中起着重要作用,因此在D型电压骤降条件下给出了电容计算。建造并测试了400瓦原型。测量原型的总体峰值效率,发现其为96%,第一阶段为98.2%,第二阶段为98.3%。

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