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Photovoltaic microgrids control by the cooperative control of multi-agent systems

机译:通过多主体系统的协同控制来控制光伏微电网

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This paper presents a cooperative control which is applied to the secondary control of multi-agent controlled microgrid. Balancing power in a microgrid is essential that leads to voltage and frequency stabilities. The voltage and frequency regulations are limiting them within specified limits and approaching them to their nominal values. Limiting and approaching voltage and frequency to their nominal values is done by primary and secondary controls, respectively. Microgrid has both dispatchable and non-dispatchable sources. Dispatchable sources have been controlled by the conventional P-w and Q-E droop controls. A photovoltaic as a non-dispatchable source generates active power according to weather conditions, but the reactive power supply is done by using E-Q droop method. The E-Q droop uses the idle capacity of the inverters in the reactive power sharing. Distributed secondary control increases stability because of good, accurate and reliable controls. Frequency is constant in the whole of microgrid. Since line impedances are different, load terminal voltage control is needed. The load as another agent is considered, who can request desired voltage at its terminal bus.
机译:本文提出了一种协同控制方法,该方法适用于多智能体微电网的二次控制。微电网中的功率平衡对于导致电压和频率稳定至关重要。电压和频率规定将它们限制在指定的范围内,并使它们接近其标称值。将电压和频率限制和逼近其标称值分别由一级和二级控制完成。微电网既有可调度资源,也有不可调度资源。可分配源已通过常规的P-w和Q-E下降控制得到控制。光伏作为不可调度的电源会根据天气情况产生有功功率,但是无功功率是通过使用E-Q下降法来完成的。 E-Q下垂将逆变器的空闲容量用于无功功率共享。分布式二级控制由于良好,准确和可靠的控制而提高了稳定性。在整个微电网中,频率是恒定的。由于线路阻抗不同,因此需要负载端子电压控制。考虑将负载作为另一个代理,他可以在其终端总线上请求所需的电压。

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