微电网SVC最优位置提高动态电压稳定性

Luis A. Paredes, Marcelo G. Molina, B. Serrano
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引用次数: 0

摘要

当微电网由于弹性偶发事件而发生从微电网向孤岛运行模式的转变时,将严重影响微电网的动态电压稳定性。采用FACTS(柔性交流输电系统)技术的静态无功补偿器(SVC)装置由于其快速有效的无功补偿,可以减轻和改善动态电压不稳定情况。SVC在MG中的最佳位置可以改善电压的动态性能。为了实现这一目标,本文提出了一种考虑电厂DIgSilent中进行的时域动态仿真的优化算法。将电压信号与时间信号进行离散化,计算出定量评价电压动态性能的指标。有了这些指标,优化算法的目标函数用混合整数线性规划模型(MILP)制定,使用Python-Pyomo求解。得到的结果令人满意,并表明SVC在孤立MG中的最佳位置显着提高了DVS,从而提高了操作弹性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Location of an SVC in a Microgrid to Improve the Dynamic Voltage Stability
When the transition from the microgrid (MG) to its island operating mode occurs due to resilient contingencies, the dynamic voltage stability (DVS) is severely compromised. The static var compensator (SVC) device with FACTS (flexible ac transmission systems) technology allows mitigating and improving dynamic voltage instability scenarios due to its fast and efficient reactive power compensation. The SVC optimal location in the MG allows improving the dynamic performance of the voltage. To achieve these aims, an optimization algorithm that considers dynamic simulations in the time domain carried out in Power Factory DIgSilent is proposed through this paper. When voltage signals are discretized vs. time signals, those indices that quantitatively evaluate the dynamic performance of the voltage are calculated. With these metrics, the objective function of the optimization algorithm is formulated with a mixed-integer linear programming model (MILP) that is solved using Python–Pyomo. The results obtained are satisfactory and demonstrated that the optimal location of the SVC in isolated MG considerably improves DVS and, consequently, the operational resilience.
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