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Experimental Verification and Finite Element Analysis of Short-Circuit Electromagnetic Force for Dry-Type Transformer

机译:干式变压器短路电磁力的实验验证与有限元分析

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The short-circuit force induces critical mechanical stress on a transformer. This paper deals with experimental verification and finite element analysis (FEA) for short-circuit force prediction of a 50 kVA dry-type transformer. We modeled high voltage (HV) winding into 20 sections and low voltage (LV) winding into 22 sections as similar as those windings of a model transformer. With this modeling technique, we could calculate electromagnetic forces acting on each section of the windings of a dry-type transformer under short-circuit condition. The magnetic vector potentials, magnetic flux densities, and electromagnetic forces due to short-circuit current are solved by FEA. The electromagnetic forces consisting of radial and axial directions depend both on short-circuit current and leakage flux density. These results were used as input source of sequential finite element method (FEM) to predict the resultant mechanical forces considering the structural characteristics such as stress distributions or deformations of windings, accurately. The obtained resultant mechanical forces in HV winding are compared with those of the experimental ones.
机译:短路力在变压器上引起临界机械应力。本文针对50 kVA干式变压器的短路力预测进行了实验验证和有限元分析(FEA)。我们将高压(HV)绕组分为20个部分,将低压(LV)绕组分为22个部分,与模型变压器的绕组相似。利用这种建模技术,我们可以计算出在短路条件下作用于干式变压器绕组各部分的电磁力。 FEA可以解决由于短路电流引起的矢量磁势,磁通密度和电磁力。由径向和轴向组成的电磁力取决于短路电流和漏磁通密度。这些结果被用作顺序有限元方法(FEM)的输入源,以准确考虑结构特征(例如应力分布或绕组变形)来预测合成机械力。将高压绕组中获得的合力与实验值进行了比较。

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