首页> 外文期刊>International Journal of Electrical Power & Energy Systems >Comparative performance analysis of Artificial Bee Colony algorithm in automatic generation control for interconnected reheat thermal power system
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Comparative performance analysis of Artificial Bee Colony algorithm in automatic generation control for interconnected reheat thermal power system

机译:人工蜂群算法在互联再热火电系统自动发电控制中的比较性能分析

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摘要

This study extensively presents the Automatic Generation Control (AGC) application of Artificial Bee Colony (ABC) algorithm. This algorithm is one of the new population based optimization algorithms which have been developed since 2005. In this study, the algorithm is applied to the interconnected reheat thermal power system in order to tune the parameters of PI and PID controllers which are used for AGC. The tuning performance of the algorithm is compared with that of Particle Swarm Optimization (PSO) algorithm through transient response analysis method. In addition to these, the robustness analysis is applied to the power system which is optimized by ABC algorithm so as to determine its response towards changing in the load and the system parameters, varied in the range of ±50%. The behavior of the system is also investigated with this analysis towards the different cost functions such as integral of absolute error (IAE), integral of squared error (ISE), integral of time weighted squared error (ITSE) and integral of time multiplied absolute error (ITAE). At the end of the study, it is seen that the ABC algorithm is successfully applied to the AGC in the application of interconnected reheat thermal power system, and it shows better tuning capability than the other similar population based optimization algorithm. Furthermore, it is also seen that the proposed system is robust and is not affected by changing in the load, the power system parameters and the cost functions.
机译:这项研究广泛地提出了人工蜂群(ABC)算法的自动发电控制(AGC)应用。该算法是自2005年以来开发的新的基于总体的优化算法之一。在本研究中,该算法被应用于互连的再热火电系统,以调节用于AGC的PI和PID控制器的参数。通过瞬态响应分析方法,将该算法的调谐性能与粒子群优化(PSO)算法进行了比较。除此之外,将鲁棒性分析应用于通过ABC算法优化的电力系统,以确定其对负载和系统参数变化的响应,变化范围为±50%。通过对不同成本函数的分析,还研究了系统的行为,例如绝对误差积分(IAE),平方误差积分(ISE),时间加权平方误差积分(ITSE)和时间乘以绝对误差积分(ITAE)。在研究的最后,可以看到在互连的再热火电系统的应用中,ABC算法已成功地应用于AGC,并且比其他类似的基于种群的优化算法具有更好的调节能力。此外,还可以看出,所提出的系统是鲁棒的,并且不受负载,电力系统参数和成本函数的变化的影响。

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