电力系统分解为实际实现大电网电压控制的方法

M. Vallem, B. Vyakaranam, Jesse T. Holzer, M. Elizondo, N. Samaan
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引用次数: 3

摘要

交流最优潮流和大容量电力系统的电压/无功协调控制等电力系统算法计算量大,难以在运行时间框架内解决。随着电力系统规模的增加,运行这些算法所需的计算时间呈指数增长。多个子系统的求解时间比同时求解整个系统的时间要短,而且电压问题的局部性质使其适合于这种分解。从电压控制问题的角度出发,提出了一种可用于电力系统分解的算法。我们的方法利用了电压控制的主要局部效应,并根据它们之间的电距离对总线进行聚类。本文的贡献之一是使用多维尺度来计算基于电距离的每个总线的«维欧几里德坐标,以执行K-means聚类等算法。以一个简单的光伏逆变器电压调节无功协调控制为例,验证了分解算法及其组成部分的有效性。在IEEE 118总线系统上对该分解方法进行了验证。
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Power system decomposition for practical implementation of bulk-grid voltage control methods
Power system algorithms such as AC optimal power flow and coordinated volt/var control of the bulk power system are computationally intensive and become difficult to solve in operational time frames. The computational time required to run these algorithms increases exponentially as the size of the power system increases. The solution time for multiple subsystems is less than that for solving the entire system simultaneously, and the local nature of the voltage problem lends itself to such decomposition. This paper describes an algorithm that can be used to perform power system decomposition from the point of view of the voltage control problem. Our approach takes advantage of the dominant localized effect of voltage control and is based on clustering buses according to the electrical distances between them. One of the contributions of the paper is to use multidimensional scaling to compute «-dimensional Euclidean coordinates for each bus based on electrical distance to perform algorithms like K-means clustering. A simple coordinated reactive power control of photovoltaic inverters for voltage regulation is used to demonstrate the effectiveness of the proposed decomposition algorithm and its components. The proposed decomposition method is demonstrated on the IEEE 118-bus system.
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