利用aq总线方法计算风电枢纽基于测量的电压稳定裕度

Scott G. Ghiocel, J. Chow, R. Quint, D. Kosterev, D. Sobajic
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引用次数: 3

摘要

在基于pv曲线的电压稳定性分析中,已知当达到最大负载条件时,牛顿-拉夫森潮流雅比矩阵变得越来越病态。在许多情况下,在达到最大负荷条件之前,潮流就出现了发散。在之前的工作中,我们提出了一种新的方法,通过使用一种新的AQ总线类型来重新表述问题,以缓解潮流中的病态问题[1]。对于AQ总线,规定了电压角和无功功耗。在稳态电压稳定性分析中,通过调节摆盘母线与AQ母线之间的角度间隔,间接控制功率传输。这种重新表述改变了雅可比矩阵,使得它在临界电压点处是非奇异的。在本研究中,我们使用AQ-bus方法来计算包含多个风力发电厂的风电枢纽的实际电力系统的PV曲线。该网络具有两条传输路径,并通过开关并联进行无功补偿。我们使用测量来建立风力发电厂和外部系统的电压稳定模型。根据其操作准则,在aq总线潮流中对开关分流进行建模。通过实际系统,我们证明了AQ-bus方法能够计算多个传输路径和复杂注入的电压稳定裕度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computing measurement-based voltage stability margins for a wind power hub using the AQ-bus method
In PV-curve-based voltage stability analysis, it is known that the Newton-Raphson power flow Jacobian matrix becomes increasingly ill-conditioned as the maximum loading condition is reached. In many cases, the power flow diverges before the maximum loading condition is reached. In previous work, we proposed a novel method to alleviate the ill-conditioning issue in the power flow by reformulating the problem using a new AQ bus type [1]. For an AQ bus, the voltage angle and reactive power consumption are specified. For steady-state voltage stability analysis, the angle separation between the swing bus and AQ bus is adjusted to indirectly control power transfer. This reformulation alters the Jacobian matrix such that it is nonsingular at the critical voltage point. In this work, we use the AQ-bus method to compute the PV curves for a real power system including a wind power hub with multiple wind power plants. The network has two transfer paths and reactive power compensation from switched shunts. We use measurements to construct voltage stability models for the wind power plants and external system. The switched shunts are modeled in the AQ-bus power flow according to their operational guidelines. Using this real system, we demonstrate the capability of the AQ-bus method to compute voltage stability margins for multiple transfer paths and complex injections.
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