高压直流MI电缆负荷循环试验时电场分布

Ik-Soo Kwon, Sun-Jin Kim, Jae-Hong Koo, Bang-wook Lee
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引用次数: 1

摘要

直流稳态下的纯电阻场分布完全由绝缘材料的电导率决定。然而,在瞬态的情况下,如负载循环试验,电导率和介电常数的影响基本上应该考虑,以获得准确的随时间变化的场分布。因此,为了对这一现象进行评价,本文通过对载荷循环试验进行数值分析,研究了中间场的特性。此外,根据温度依赖系数进行了电场分析,比较了随时间变化的电场分布。结果表明,冷却循环时的最大场强远大于加热循环时的最大场强。这是因为在负载循环试验中,传导电流和极化电流都是决定中间场分布的重要因素。结果表明,随着温度依赖系数的减小,出现最大电场强度的时间点有所延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Time-Dependent Electric Field Distribution during Load Cycle Test for HVDC MI Cable
A pure resistive field distribution in DC steady state is entirely determined by an electrical conductivity of insulating material. However, in the case of transient state such as load cycle test, an influence of both the electrical conductivity and the dielectric permittivity should be essentially considered to obtain an accurate time-dependent field distribution. Therefore, in this paper, in order to evaluate this phenomenon, the characteristics of intermediate field were investigated by performing numerical analysis in load cycle test. In addition, an electric field analysis according to a temperature dependency coefficient was carried out to compare time-varying field distributions. From the result, it is found that the maximum field intensity at cooling cycle was rather higher than heating cycle. It is because both conduction current and polarization current are the significant factors in determination of the intermediate field distribution during load cycle test. It was confirmed that the time point at which the maximum electric field intensity occurred was delayed according to temperature dependence coefficient became smaller.
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