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Optimum values of TMS and ps of overcurrent relays using amalgam of GA-NLP methods

机译:使用GA-NLP方法汞合金的过流继电器TMS和PS的最佳值

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Overcurrent relays ha an enormous advantage that its time of operation can be reduced as well as its coordination can be sustained with selection of optimum values of time multiplier setting (TMS) and plug setting (PS) of OCRs. This paper presents amalgam of genetic algorithm (GA) - nonlinear programming (NLP) methods for determining optimum values of TMS and PS of overcurrent relays. Genetic algorithm (GA) has a shortcoming of converging to those values which may not be optimum, and nonlinear programming (NLP) methods have shortcoming of converging to local optimum values, in case if the initial choice is nearer to local optimum. This paper proposes amalgam method to overcome the drawback of GA and NLP method, thereby determining the optimum settings of overcurrent relays. The main crux of this paper is to formulate problem of determining optimum values of TMS and PS of overcurrent relays in distribution systems as a nonlinear optimization problem as well as to determining initial values of TMS and PS using GA technique and to find optimum values using NLP method, thus making both the methods advantageous.
机译:过电流继电器HA是一种巨大的优势,即其操作时间可以减少,并且其协调可以通过选择OCR的最佳时间乘数设置(TMS)和插头设置(PS)的选择来维持。本文介绍了遗传算法(GA) - 非线性编程(NLP)方法的汞合金,用于确定过电流继电器的TMS和PS的最佳值。遗传算法(GA)具有会聚到可能不是最佳的值的缺点,并且非线性编程(NLP)方法具有会聚到局部最佳值的缺点,以防初始选择更接近局部最佳值。本文提出了克服Ga和NLP方法的缺点的汞合金方法,从而确定过电流继电器的最佳设置。本文的主要关键是在分配系统中确定在分配系统中确定的TMS和PS的最佳值作为非线性优化问题,以及使用GA技术确定TMS和PS的初始值,并使用NLP找到最佳值方法,从而使方法具有有利的。

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