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Frequency-Domain Maximum-Likelihood Estimation of High-Voltage Pulse Transformer Model Parameters

机译:高压脉冲变压器模型参数的频域最大似然估计

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摘要

This paper presents an offline frequency-domain nonlinear and stochastic identification method for equivalent model parameter estimation of high-voltage pulse transformers. Such kinds of transformers are widely used in the pulsed-power domain, and the difficulty in deriving pulsed-power converter optimal control strategies is directly linked to the accuracy of the equivalent circuit parameters. These components require models which take into account electric fields energies represented by stray capacitance in the equivalent circuit. These capacitive elements must be accurately identified, since they greatly influence the general converter performances. A nonlinear frequency-based identification method, based on maximum-likelihood estimation, is presented, and a sensitivity analysis of the best experimental test to be considered is carried out. The procedure takes into account magnetic saturation and skin effects occurring in the windings during the frequency tests. The presented method is validated by experimental identification of a 2-MW–100-kV pulse transformer.
机译:针对高压脉冲变压器等效模型参数估计问题,提出了一种离线的频域非线性随机辨识方法。这种类型的变压器广泛用于脉冲功率领域,推导脉冲功率转换器最佳控制策略的困难直接与等效电路参数的精度有关。这些组件需要考虑到等效电路中由杂散电容表示的电场能量的模型。这些电容性元件必须准确识别,因为它们会严重影响一般的转换器性能。提出了一种基于最大似然估计的基于频率的非线性识别方法,并对考虑的最佳实验测试进行了敏感性分析。该程序考虑了频率测试期间绕组中发生的磁饱和和集肤效应。通过对2 MW–100 kV脉冲变压器进行实验鉴定,验证了所提出的方法。

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