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Online critical clearing time estimation using an adaptive neuro-fuzzy inference system (ANFIS)

机译:使用自适应神经模糊推理系统(ANFIS)的在线关键清除时间估计

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This paper describes an approach using an adaptive neuro-fuzzy inference system (ANFIS) for the assessment of online critical clearing time (CCT). The ANFIS can integrate neural networks and fuzzy logic principles, and has a potential to combine the advantages of both in a single framework. In this paper, the ANFIS is applied for the prediction of CCT by varying load levels and fault locations in buses and transmission lines. The IEEE 39-bus system and 9-bus western system coordinating council are tested and implemented in this study. All machines of the IEEE 39-bus system are considered as the classical model without considering any generator's exciters. While three machines in the 9-bus western system coordinating council are considered as detailed models, forth-order differential equation is described for all machines by considering the excitation system controller. CCT values obtained by the time domain simulation method using step-by-step calculation are used as the benchmark. The power world version 17 is used for transient simulation, and the ANFIS is implemented using MATLAB version 2014B. The results obtained from the ANFIS approach are quite satisfied with high accurate solutions and much lower computation time. Finally, the graphical user interface in MATLAB is applied for the online CCT estimation of two test power systems by using appropriate ANFIS models obtained from simulations. (C) 2015 Published by Elsevier Ltd.
机译:本文介绍了一种使用自适应神经模糊推理系统(ANFIS)评估在线关键清除时间(CCT)的方法。 ANFIS可以集成神经网络和模糊逻辑原理,并且有可能在单个框架中结合两者的优势。在本文中,通过改变总线和传输线上的负载水平和故障位置,将ANFIS应用于CCT的预测。本研究测试并实施了IEEE 39总线系统和9总线西方系统协调委员会。 IEEE 39总线系统的所有机器都被视为经典模型,而没有考虑任何发电机的激励器。虽然将9座客车的西方系统协调委员会中的三台机器视为详细模型,但通过考虑励磁系统控制器,为所有机器描述了四阶微分方程。通过使用逐步计算的时域仿真方法获得的CCT值用作基准。 Power world版本17用于瞬态仿真,而ANFIS使用MATLAB版本2014B实现。从ANFIS方法获得的结果在高精度解决方案和更少的计算时间下非常满意。最后,通过使用从仿真中获得的适当的ANFIS模型,将MATLAB中的图形用户界面应用于两个测试电源系统的在线CCT估计。 (C)2015年由Elsevier Ltd.出版

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