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A NOVEL APPROACH TO POWER SYSTEM STABILIZER TUNING USING SPARLS ALGORITHM

机译:使用稀疏算法的电力系统稳定器调整的新方法

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摘要

Generators have to meet the change in real and reactive power demand of practical power system. The real power variations in the system are met out by the rescheduling process of the generators. But there is a huge trust to meet out the reactive power load demand. The excitation loop of the corresponding generator is adjusted with its electric limits to activate the reactive power of the network. To expedite the reactive power delivery, power system stabilizer (PSS) is connected in the exciter loop of the generator for various system conditions. In this paper, a new Sparse Recursive Least Square (SPARLS) algorithm is demonstrated to tune the power system stabilizer parameters to meet the vulnerable conditions. The proposed SPARLS algorithm makes use of expectation maximization (EM) updation to tune the PSS. A comparative study between the proposed SPARLS and RLS algorithm has been performed on single machine infinite bus system (SMIB). The simulation results obtained will validate the effectiveness of the proposed algorithm and the impact of stability studies of the power system operation under disturbances. The SPARLS algorithm is also used to tune the parameters of PSS to achieve quicker settling time for the system parameter such as load angle, field voltage and speed deviation. It is found that the SPARLS is a better algorithm for the determination of optimum stabilizer parameter.
机译:发电机必须满足实际电力系统中有功和无功功率的变化。系统中的有功功率变化通过发电机的重新安排过程得以解决。但是,人们对满足无功功率负载需求抱有极大的信任。调节相应发电机的励磁回路的电气极限,以激活电网的无功功率。为了加快无功功率传输,在各种系统条件下,将发电机稳定器(PSS)连接到发电机的励磁回路中。本文提出了一种新的稀疏递归最小二乘算法(SPARLS)来调节电力系统稳定器参数以满足脆弱的条件。提出的SPARLS算法利用期望最大化(EM)更新来调整PSS。在单机无限总线系统(SMIB)上进行了SPARLS和RLS算法的比较研究。获得的仿真结果将验证所提出算法的有效性以及扰动下电力系统运行稳定性研究的影响。 SPARLS算法还用于调整PSS的参数,以加快系统参数(例如负载角度,励磁电压和速度偏差)的建立时间。发现SPARLS是确定最佳稳定器参数的更好算法。

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