Harmonic domain modeling of transformer nonlinear characteristic with piece-wise approximation

A. Damnjanovic, A. Islam, A. Domijan
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引用次数: 7

Abstract

Power system devices such as transformers, generators, and reactors have nonlinear characteristics because of the magnetic material used for their construction. Hence, understanding how the harmonics affect the power system requires explorations of the harmonic characteristics of each nonlinear component including the transformers. Thus, particular models need to be developed for the power system and machines design, and harmonic power flow analysis. Regarding the modeling of transformer nonlinearity, including hysteresis, there are many numerical methods that have been applied and many models have been developed. The nonlinearity of these devices cannot be correctly represented unless the hysteresis is included. Although the developed model can be used for other devices such as reactors, generators and motors, we are primarily focused on modeling of the transformers. There are many models developed for nonlinear transformer characteristics from various aspects, but none address the influences of the actual mechanical stresses on the magnetic materials. Mechanical stress modifies the nonlinear characteristics of the transformer and consequentially influences the operation of the transformers generating higher level of harmonics, increasing both losses and transformer noise. Our goal was to develop an accurate model and expressive formulas that can be used for practical engineering applications in transformer design and power system analysis based on minimal measured data requirements. The excitation characteristics of the transformer are presented with two piecewise approximated functions. The Harmonic Balance Method - Describing Function is used to obtain the harmonic magnitude and phase angles of the excitation current. The proposed model has been verified with experimentally obtained results for the transformer excitation current.
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基于分段逼近的变压器非线性特性谐波域建模
电力系统设备,如变压器、发电机和电抗器,由于其结构所用的磁性材料而具有非线性特性。因此,了解谐波如何影响电力系统需要探索包括变压器在内的每个非线性部件的谐波特性。因此,需要建立特定的模型来进行电力系统和机械的设计,以及谐波潮流的分析。关于变压器非线性(包括磁滞)的建模,已经应用了许多数值方法,并建立了许多模型。如果不考虑迟滞,这些器件的非线性就不能正确地表示出来。虽然开发的模型可以用于其他设备,如电抗器、发电机和电动机,但我们主要关注变压器的建模。从各个方面研究变压器非线性特性的模型很多,但没有一个模型考虑实际机械应力对磁性材料的影响。机械应力改变了变压器的非线性特性,从而影响变压器的运行,产生更高的谐波水平,增加了损耗和变压器噪声。我们的目标是开发一个精确的模型和表达公式,可用于变压器设计和电力系统分析的实际工程应用,基于最小的测量数据要求。变压器的励磁特性用两个分段逼近函数表示。谐波平衡法-描述函数用于获得励磁电流的谐波幅值和相位角。用变压器励磁电流的实验结果验证了该模型的正确性。
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