Power oscillation damper design using minimax LQG and LQG methods in large scale PV plants

Jisha John, M. B. Revathy
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引用次数: 1

Abstract

Large number of transmission voltage level PV plants are integrated into the existing transmission networks. As PV penetrations on weak transmission links increases, its impact on power system stability also increases. Low frequency oscillations are produced due to this reason. The influence on low frequency oscillations vary, it can be positive or negative depending upon the location and sizes of large scale PV plants. The low frequency oscillation (LFO) changes as its location changes, but it is not possible to shift these plants to an ideal location where the influence of low frequency oscillations less. So a damping controller has to be designed in order to reduce the low frequency oscillations. The POD is based on minimax linear quadratic gaussian method. In order to illustrate damping performance of the designed controller, a test system prone to power system oscillations is used. The test system and the PV model are simulated and then connected to analyse the produced oscillations. Then for mitigating the oscillations, the damping controller is designed. For designing of minimax LQG controller, state space representation of the entire power system model is required. From that state space matrices, by following a step by step procedure of minimax LQG method, the controller matrix can be formulated. The POD can be used to eliminate the low frequency oscillations. Controller is also designed using LQG method and by comparing the damping of oscillations by these two methods, we can see that minimax LQG method gives better damping of oscillations.
基于LQG和LQG方法的大型光伏电站功率振荡阻尼器设计
大量的输电电压级光伏电站被整合到现有的输电网络中。随着光伏在输电薄弱环节渗透率的增加,其对电力系统稳定性的影响也越来越大。低频振荡是由于这个原因产生的。对低频振荡的影响是不同的,它可以是积极的或消极的,这取决于大型光伏电站的位置和规模。低频振荡(LFO)随其位置的变化而变化,但不可能将这些植物转移到低频振荡影响较小的理想位置。所以必须设计一个阻尼控制器来减少低频振荡。该方法基于极大极小线性二次高斯方法。为了说明所设计控制器的阻尼性能,采用了一个易受电力系统振荡影响的测试系统。对试验系统和PV模型进行了仿真,并对产生的振荡进行了分析。然后设计了阻尼控制器以减轻振动。对于极大极小LQG控制器的设计,需要对整个电力系统模型进行状态空间表示。从该状态空间矩阵出发,采用极大极小LQG法逐级推导出控制器矩阵。POD可用于消除低频振荡。采用LQG方法设计了控制器,通过比较两种方法对振动的阻尼,可以看出极大极小LQG方法对振动的阻尼效果更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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