Experiment and Simulation of Leakage Current in HVDC Cable under Different Electro-Thermal Stresses

Sathyamoorthy Dhayalan, Bibhav Das, P. Johri, C. Reddy
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Abstract

In the recent decades, HVDC XLPE cables have been in use for long distance transmission of power. A good insulator must have very low conductivity, low losses and high thermal stability. It is believed that, impurities, multiple voids, moisture and other contamination in the insulation may lead to increase in leakage current which causes losses in insulation, eventually leading to degradation or failure of insulation. Under high electric and thermal stresses, during transients such as switching, high load and sudden change in loads may lead to a faster rate of degradation of the insulation. So, it’s important to measure insulation leakage current to identify the status of insulation. In this paper, the authors have experimentally measured the leakage current of an actual XLPE cable under different electro-thermal stresses. The leakage current has also been simulated under similar stresses using interdependent distributed electrical and thermal circuit models. The nonlinearly varying DC conductivity of the insulation, characterized experimentally, has been incorporated in the simulation. The multi-factor dependency has been implemented in the circuit simulation. Using simulation model, the leakage current can be estimated for varying electric and thermal fields.
不同电热应力下高压直流电缆泄漏电流的实验与仿真
近几十年来,高压直流交联聚乙烯电缆已被用于长距离电力传输。一个好的绝缘体必须具有非常低的导电性,低损耗和高热稳定性。认为,绝缘中的杂质、多空隙、水分等污染可能导致泄漏电流增大,从而造成绝缘损耗,最终导致绝缘劣化或失效。在高电应力和热应力下,在开关等瞬变过程中,高负荷和负荷的突然变化可能导致绝缘的更快的降解速度。因此,通过测量绝缘泄漏电流来识别绝缘状态是非常重要的。本文通过实验测量了实际交联聚乙烯电缆在不同电热应力下的漏电流。利用相互依赖的分布式电和热电路模型,模拟了相似应力下的泄漏电流。实验表征的绝缘体直流电导率的非线性变化已纳入模拟。在电路仿真中实现了多因素依赖。利用仿真模型,可以估算出不同电场和热场下的泄漏电流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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