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S-shaped droop control method with secondary frequency characteristics for inverters in microgrid

机译:微电网逆变器具有次级频率特性的S形下垂控制方法

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摘要

Microgrid technologies have been studied for various goals including enabling renewable energy penetration. Traditional droop control is important for microgrids to achieve plug and play characteristics, but it may not be suitable for storage units with time-varying capacity levels due to the constant slope in droop control. In order to address the potential challenges of dynamic adjustment in linear droop control applied to microgrid inverters powered by limited energy sources, this study presents an S-shaped droop control. This control method tends to make the inverter to output more power when the frequency is close to the nominal operating point, while outputting less power when the frequency is away from the nominal operating point such that the other generators will pick up more load. Also, power quality problems can be addressed with the improvement provided by the characteristic similar to the secondary frequency control which brings the frequency closer to the rated frequency. The proposed mathematical model is built by curve fitting and theoretic analysis, and is simulated in Matlab/Simulink. The results verified the ability to improve power quality and adjust the load share among inverters as opposed to conventional droop control.
机译:微电网技术已针对各种目标进行了研究,包括实现可再生能源的渗透。传统的下垂控制对于微电网实现即插即用特性很重要,但由于下垂控制中的斜率恒定,因此它可能不适用于容量随时间变化的存储单元。为了解决应用于受有限能量驱动的微电网逆变器的线性下垂控制中动态调整的潜在挑战,本研究提出了一种S型下垂控制。这种控制方法倾向于使变频器在频率接近标称工作点时输出更多的功率,而在频率远离标称工作点时输出更少的功率,从而使其他发电机承担更多的负载。同样,电能质量问题可以通过类似于次级频率控制的特性所提供的改进来解决,该改进使频率更接近额定频率。通过曲线拟合和理论分析,建立了所提出的数学模型,并在Matlab / Simulink中进行了仿真。结果证明,与传统的下垂控制相比,可以改善电能质量并调节逆变器之间的负载分配。

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