基于Crow搜索算法的SVC辅助SMIB系统最优动态性能控制

S. Kumar, Akshay Kumar, G. Shankar
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引用次数: 7

摘要

本文对利用静态无功补偿器(SVC)改善电力系统模型的动态和稳态性能进行了研究。SVC是柔性交流输电系统家族中的一种并联装置,广泛用于提高电压分布和输电能力。采用SVC与电力系统稳定器(PSS)共同抑制系统的振荡,使系统在扰动后恢复到稳定状态。采用Crow搜索算法(CSA)对PSS和SVC的常规参数进行优化。仿真结果与粒子群优化算法(PSO)和基于教与学的优化算法(TLBO)进行了比较。同时,利用稳态条件下的特征值分析验证了基于CSA的调谐PSS和SVC作用下的电力系统模型,以研究稳态稳定性。利用CSA、PSO和TLBO调谐的PSS和SVC,在MATLAB/SIMULINK平台下对所研究的单机无限母线系统进行了动态稳定性评价的时域对比仿真。结果证实了CSA对PSS和SVC的调节效果优于其他同类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crow search algorithm based optimal dynamic performance control of SVC assisted SMIB system
A study on improvement of dynamic as well as steady state performance of power system model using static VAR compensator (SVC) is carried out in this paper. SVC refers to a shunt device within the family of flexible alternating current transmission system and is widely used for enhancing voltage profile and power transmission capability. SVC along with power system stabilizer (PSS) is employed to damp out the oscillation and take back the system to a stable state following disturbance. Crow search algorithm (CSA) is implemented to optimize conventional parameters of PSS and SVC. Simulation results found by it are compared with others optimization algorithms such as particle swarm optimization (PSO) and teaching-learning-based optimization (TLBO). Also, power system model under the effect of CSA based tuned PSS and SVC is verified using eigenvalue analysis under steady state condition for investigating steady state stability. A comparative time domain simulation under MATLAB/SIMULINK platform employing CSA, PSO and TLBO tuned PSS and SVC with studied single machine infinite bus system is carried for dynamic stability assessment. Results obtained confirm the efficacy of the CSA in better tuning of PSS and SVC than other counterparts.
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