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Transformer-based solutions for the reduction of inrush and phase-hop currents.

机译:基于变压器的解决方案,用于减少浪涌电流和相跳电流。

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摘要

A comprehensive literature review shows that transformer based solutions are superior for the mitigation of inrush currents than external (to the transformer) solutions. The use of air gaps and low-permeability (iron) materials are known techniques for this propose. The effectiveness of these approaches for reducing inrush and phase-hop currents is investigated. Studies are carried out on toroidal transformers, due to their broad application in power electronics devices. Contrary to common belief, it is demonstrated that air gaps do not reduce the inrush currents when a transformer is fully demagnetized. However, inrush currents can be mitigated by the use of low-permeability iron materials. It is also demonstrated that air-gaps significantly reduce inrush currents when transformers have residual flux, e.g. for phase-hop conditions. Analytical expressions are derived to compute the mitigation factor for a specific gap length. The results and formulae presented in this thesis are verified with laboratory experiments, transient simulations with validated circuit models, and 2D finite element simulations.
机译:全面的文献综述表明,基于变压器的解决方案在减轻涌入电流方面优于外部(针对变压器)解决方案。气隙和低渗透性(铁)材料的使用是该提议的已知技术。研究了这些方法减少浪涌电流和相跳电流的有效性。由于环形变压器在电力电子设备中的广泛应用,因此对其进行了研究。与通常的看法相反,事实证明,当变压器完全消磁时,气隙不会减少浪涌电流。但是,通过使用低磁导率的铁材料可以减轻涌入电流。还证明了,当变压器具有残留的磁通量时,例如空气间隙,气隙会显着降低浪涌电流。适用于相跳条件。导出分析表达式以计算特定间隙长度的缓解因子。本文的结果和公式通过实验室实验,经过验证的电路模型进行的瞬态仿真以及二维有限元仿真得到了验证。

著录项

  • 作者

    Dogan, Rasim.;

  • 作者单位

    Polytechnic Institute of New York University.;

  • 授予单位 Polytechnic Institute of New York University.;
  • 学科 Engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 49 p.
  • 总页数 49
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:21

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