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Power Flow Control of Interconnected AC–DC Microgrids in Grid-Connected Hybrid Microgrids Using Modified UIPC

机译:使用改进的UIPC的并网混合微电网中互连的AC-DC微电网的功率流控制

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This paper introduces a new approach for power flow control of interconnected ac-dc microgrids in grid-connected hybrid microgrids based on implementing a modified unified interphase power controller (UIPC). A typical grid-connected hybrid microgrid including one ac microgrid and one dc microgrid is considered as studied system. Instead of using the parallel-connected power converters, these microgrids are interconnected using a modified UIPC. As the first contribution of this paper, the conventional structure of UIPC, which uses three power converters in each phase, is modified so that a reduced number of power converters is implemented for power exchange control between ac and dc microgrids. The modified structure includes one power converter in each phase (line power converter (LPC)), and a power converter which regulates the dc bus voltage (bus power converter (BPC)) here. The ac microgrid is connected to the main grid through the LPCs which their dc buses are linked and can operate in capacitance mode or inductance mode. A fuzzy logic controller is used in the control structure of the LPCs. The fuzzy inference system is optimized based on H-infinity filtering method to reduce the errors in membership functions design. Through the BPC, the dc voltage of LPCs is supplied by the dc microgrid. However, since the dc microgrid voltage is provided here by a photovoltaic system, the dc link voltage of the LPCs is fluctuating. Thus, as the second contribution to stabilize the dc link fluctuations, a new nonlinear disturbance observer-based robust multiple-surface sliding mode control strategy is presented for dc side control of the BPC. The simulation results confirm the effectiveness of the proposed power flow control strategy of the improved UIPC for hybrid microgrids.
机译:本文在实现改进的统一相间功率控制器(UIPC)的基础上,介绍了一种新的方法来控制并网混合微电网中互连的ac-dc微电网的潮流。包括一个交流微电网和一个直流微电网的典型并网混合微电网被视为研究系统。这些微电网不是使用并联的电源转换器,而是使用改良的UIPC互连。作为本文的第一篇贡献,对UIPC的常规结构进行了修改,该结构在每个相中都使用三个功率转换器,从而减少了功率转换器的数量,以实现交流和直流微电网之间的功率交换控制。修改后的结构在每相中包括一个功率转换器(线路功率转换器(LPC)),以及在此调节直流总线电压的功率转换器(总线功率转换器(BPC))。交流微电网通过LPC连接到主电网,LPC的直流母线已链接到该LPC,并且可以在电容模式或电感模式下运行。 LPC的控制结构中使用了模糊逻辑控制器。基于H-无穷大滤波方法对模糊推理系统进行了优化,以减少隶属函数设计中的误差。通过BPC,LPC的直流电压由直流微电网提供。但是,由于此处的直流微电网电压是由光伏系统提供的,因此LPC的直流链路电压会发生波动。因此,作为稳定直流链路波动的第二项贡献,提出了一种新的基于非线性干扰观测器的鲁棒多表面滑模控制策略,用于BPC的直流侧控制。仿真结果证实了所提出的用于混合微电网的改进的UIPC的潮流控制策略的有效性。

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