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考虑环氧胶浸纸各向异性体积电导的直流套管芯体多物理场耦合仿真

  • School of Electrical Engineering
  • State Grid Corporation of China

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

The anisotropic conductivity of resin impregnated paper (RIP) has been seldom considered in the simulation of electric field distribution and charge accumulation within the valve-side bushing of a converter transformer until now. In order to investigate both the anisotropy in the conductivity of resin impregnated paper and its temperature dependence, we established a three-electrode volume conductivity measurement platform. A simulation model based on electric-thermal-fluid multi-physical coupling was developed for a scaled model of an 800 kV DC bushing. The characteristics of electric field distribution and charge accumulation were compared between isotropic and anisotropic conductivity scenarios. It was observed that resin impregnated paper exhibits significant anisotropy in volume conductivity, with the volume conductivity along the paper being over six times greater than that across it within a temperature range of 40~100 ℃. The simulation results indicated that, when considering anisotropic conductivity, substantial negative charges accumulated at the end of the bushing under the positive DC power compared with the isotropic condition. The maximum negative charge density reached 1.28×10–5 C/m2. This led to a 20.2% decreased potential at this location and a 10.9-fold electric field intensification of SF6 side across the gas gap between the shielding electrode and the end of the bushing core. These findings reveal that the surface flashover observed in actual resin impregnated paper bushings may be attributed to discharges occurring within small gaps present in these bushings.

投稿的翻译标题Multi-physical Field Coupling Simulation of DC Bushing Core Considering the Anisotropic Volume Conductivity of Resin Impregnated Paper
源语言繁体中文
页(从-至)2291-2302
页数12
期刊Gaodianya Jishu/High Voltage Engineering
52
5
DOI
出版状态已出版 - 31 5月 2026
已对外发布

关键词

  • anisotropic conductivity
  • charge accumulation
  • electric field distribution
  • resin impregnated paper
  • valve-side bushing

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