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Dynamics of streaming electrification in large power transformers.

机译:大型电力变压器中流化带电的动力学。

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摘要

To provide for the reliable operation of large power transformers, a dielectric coolant, transformer oil, is circulated through the winding and spacer structure to remove the heat of electrical losses. This gives rise to the sometimes catastrophic phenomenon of streaming electrification. Many of the failures resulting from streaming electrification occurred within a few hours of the initiation of flow, indicating that startup transients of streaming electrification may significantly affect the system. This hypothesis was investigated in an experimental flow system. The results, reported in this thesis, reveal the existence of two transients, a short term transient that is re-initiated each time the flow is initiated, and a long term transient that re-initiates only with the renewal of the interface. The short term transient is related to the re-distribution of charge in the double layer, while the long-term transient has to do with the charge adsorbed on the interface and the products of electrolysis due to the leakage current across the interface. The short term transient was further investigated using a finite difference analysis of the charge transport equations. The computational model provided information not only on the velocity dependence of steady state and transient characteristics, but also on geometry, conductivity, diffusivity, and electric field dependence. A number of mitigation efforts are recommended, including the use of a novel intelligent controller for the power transformer cooling system, which uses a combination of fuzzy logic and neural networks to operate the transformer in temperature and flow regimes that pose minimal risk of streaming electrification.
机译:为了确保大型电力变压器的可靠运行,介电冷却剂,变压器油在绕组和垫片结构中循环流通,以消除电气损耗的热量。这引起了有时流式电气化的灾难性现象。由流带电引起的许多故障发生在流动开始后的几个小时内,这表明流带电的启动瞬态可能会严重影响系统。在实验流系统中研究了该假设。本文报道的结果揭示了两个瞬态的存在,一个短期瞬态在每次启动流时都会重新启动,而一个长期瞬态则仅在界面更新时才重新启动。短期瞬变与电荷在双层中的重新分布有关,而长期瞬变与吸附在界面上的电荷和由于跨界面的泄漏电流导致的电解产物有关。使用电荷传输方程的有限差分分析进一步研究了短期瞬变。该计算模型不仅提供有关稳态和瞬态特性的速度相关性,而且还提供有关几何形状,电导率,扩散率和电场相关性的信息。建议采取多种缓解措施,包括在电力变压器冷却系统中使用新型智能控制器,该控制器结合了模糊逻辑和神经网络,可在温度和流量状态下操作变压器,从而将流带电风险降至最低。

著录项

  • 作者

    Palmer, John Arthur.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:49:30

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