高压直流和超高压直流电缆型式试验负荷循环过程中的电场分布模拟

Xiao Gu, Tao Zhu
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引用次数: 0

摘要

挤压式高压直流和超高压直流电缆系统在远距离和海上电力传输中占据主导地位。随着对大传输容量需求的不断增长,要求更高额定电压和更高工作温度的电缆系统正在得到发展。当直流电缆型式试验合格时,在一定的热条件下,电缆绝缘内部的电场分布是至关重要的。通过确定电缆中的电场分布,可以得到电缆的工作热极限。选取了400 kV和535 kV直流交联聚乙烯电缆型式试验负荷循环试验的温度分布。用电缆切片法获得了交联聚乙烯的电导率参数。利用场系数和温度系数解析拟合的XLPE电导率,模拟研究了不同热条件下电缆绝缘中的电场分布。仿真结果表明,在型式试验中,电缆绝缘上较大的温度梯度会导致电缆绝缘屏击穿,特别是对超高压直流电缆。确定直流电缆的允许工作条件时,应同时考虑导体温度和温度梯度。了解电缆绝缘中的电场分布,可以正确控制型式试验中的热条件,以确保电缆合格。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of Electrical Field Distribution of HVDC and EHVDC Cable during Load Cycles in Type Test
Extruded HVDC and EHVDC cable systems are taking a leading role in long distance and off-shore power transmission. Cable systems with higher rated voltages and elevated working temperature are being developed with the rising demand for large transmission capacity. When DC cables are qualified during type test, electrical field distribution inside cable insulation could be critical under certain thermal conditions. The operational thermal limits could be obtained by determining electrical field distribution in the cable. Temperature profiles were taken from load cycle tests of type test of 400 kV and 535 kV DC XLPE cables, respectively. XLPE electrical conductivity parameters were obtained using cable slices. With XLPE conductivity analytically fitted with field and temperature coefficients, the electrical field distribution in the cable insulation under different thermal conditions are investigated by simulation. The simulation results show that a large temperature gradient over the cable insulation can lead to breakdown at insulation screen of the cable during type test, especially for EHVDC cables. The permissible working conditions of DC cable should be determined considering both conductor temperature and temperature gradient. With understanding of electrical field distribution in the cable insulation, thermal conditions during type test can be controlled properly to ensure a successful cable qualification.
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