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Identification of high-order synchronous generator models from SSFR test data

机译:根据SSFR测试数据识别高阶同步发电机模型

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This paper presents a direct maximum-likelihood estimation procedure to identify the synchronous machine models based on the standstill frequency response (SSFR) test data. The method presented in this study is the first and only algorithm utilizing all available SSFR test data under both shorted and open field circuit conditions to establish a unique equivalent circuit model by maximizing the conditional probability density function of the error residuals. The method is applied to the modeling of two well-known generators, namely the Rockport and Nanticoke generators, using the measured SSFR test data. The results of the study show that by incorporating both the open and short-circuit SSFR data in the modeling process, the SSFR characteristics of the two generators can be accurately represented by the established high order synchronous models up to 1 kHz. The identified synchronous machine model consists of five amortisseur windings on each axis. In addition, an eddy-current effect impedance is included in the d-axis model for representing the increased influence of rotor eddy current under the open-circuit test condition.
机译:本文提出了一种直接最大似然估计程序,以基于停顿频率响应(SSFR)测试数据来识别同步电机模型。本研究中提出的方法是在短路和开路情况下利用所有可用SSFR测试数据的第一个也是唯一的算法,通过最大化误差残差的条件概率密度函数来建立唯一的等效电路模型。该方法适用于使用测得的SSFR测试数据对两个著名的发电机,即Rockport和Nanticoke发电机进行建模。研究结果表明,通过在建模过程中结合开路和短路SSFR数据,可以通过已建立的高达1 kHz的高阶同步模型来准确地表示两台发电机的SSFR特性。识别出的同步电机模型在每个轴上都包含五个绕组。此外,d轴模型中包括一个涡流效应阻抗,用于表示在开路测试条件下转子涡流的影响增加。

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