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首页> 外文期刊>Applied Energy >Three-stage control architecture for cascaded H-Bridge inverters in large-scale PV systems - Real time simulation validation
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Three-stage control architecture for cascaded H-Bridge inverters in large-scale PV systems - Real time simulation validation

机译:大型光伏系统中级联H桥逆变器的三级控制架构-实时仿真验证

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摘要

In large-scale PV power stations, Cascaded H-Bridge (CHB) inverter based PV power conditioning systems are recommended over a conventional Two-Level Inverter based systems since CHB operates at medium voltage levels and provides better power quality. An insulated-gate bipolar transistor (IGBT) based H-bridge along with the auxiliaries such as DC link capacitors, breakers, contactors, bypass switch, voltage and current transducers is the fundamental power module of a CHB inverter. In this paper, the procedure for selection of components for Basic building block is presented. Due to a higher number of H-Bridge modules in a large-scale system, it is difficult to control the system with a single controller card. In this work, a control architecture for three-phase CHB based PV power conditioning systems is proposed in which the controls are distributed into three different stages. With the proposed control architecture, independent Maximum power point tracking (MPPT) controls of each PV array is carried out at module level itself. Carrying out MPPT controls at module level helps in improving the computational speed and in maintaining modularity. Hardware requirements of individual processor cards also minimized with the proposed control architecture. In this work, functionalities of each controller card namely module level control card, phase-level control card and master controller cards are explained in detail. Detailed interfacing and signal exchange between H-Bridge modules and the other controller cards are also presented. Controller-in-loop simulations are carried out with the help of Real-Time Simulator to validate the functionalities of each controller card. Real-Time simulation results are presented to verify the operation of the system with the proposed control architecture. Performance and dynamic response of MPPT controls for sudden changes in irradiance inputs on PV arrays are studied. Operation of the system during unequal irradiance inputs on the PV arrays is also analyzed. Current sharing between PV Inverter and grid to feed a fixed load for different values of irradiance inputs is explained through the presented results.
机译:在大型光伏电站中,与传统的基于两级逆变器的系统相比,建议使用基于层叠式H桥(CHB)逆变器的PV功率调节系统,因为CHB处于中等电压水平并提供更好的电能质量。基于绝缘栅双极晶体管(IGBT)的H桥以及诸如直流母线电容器,断路器,接触器,旁路开关,电压和电流传感器等辅助设备是CHB逆变器的基本电源模块。在本文中,介绍了基本构建块的组件选择过程。由于大型系统中的H桥模块数量更多,因此很难使用单个控制器卡来控制系统。在这项工作中,提出了一种基于三相CHB的PV功率调节系统的控制体系结构,其中,控制分为三个不同的阶段。利用建议的控制体系结构,每个光伏阵列的独立最大功率点跟踪(MPPT)控制都在模块级别本身进行。在模块级别执行MPPT控件有助于提高计算速度并保持模块化。所提出的控制体系结构还使单个处理器卡的硬件要求最小化。在这项工作中,将详细说明每个控制器卡(即模块级控制卡,相级控制卡和主控制器卡)的功能。还介绍了H桥模块与其他控制器卡之间的详细接口和信号交换。在实时模拟器的帮助下进行控制器在环仿真,以验证每个控制器卡的功能。提出了实时仿真结果,以验证采用所提出的控制体系结构的系统的运行情况。研究了MPPT控件在光伏阵列上辐照输入突然变化时的性能和动态响应。还分析了在光伏阵列上辐照度输入不相等时系统的运行情况。通过给出的结果说明了光伏逆变器和电网之间的电流分配,以为不同的辐照度输入值提供固定负载。

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