高春嘉, 齐波, 陈聪聪, 赵晓林, 汪可, 张书琦, 李成榕. 直流电场下变压器油隙间距对油中空间电场及界面电荷特性影响机理[J]. 中国电机工程学报, 2025, 45(5): 1980-1992. DOI: 10.13334/j.0258-8013.pcsee.232393
引用本文: 高春嘉, 齐波, 陈聪聪, 赵晓林, 汪可, 张书琦, 李成榕. 直流电场下变压器油隙间距对油中空间电场及界面电荷特性影响机理[J]. 中国电机工程学报, 2025, 45(5): 1980-1992. DOI: 10.13334/j.0258-8013.pcsee.232393
GAO Chunjia, QI Bo, CHEN Congcong, ZHAO Xiaolin, WANG Ke, ZHANG Shuqi, LI Chengrong. Influencing Mechanism of Oil Gap Spacing on Space Electric Field in Oil and Oil-pressboard Interface Charge Under DC Electric Field[J]. Proceedings of the CSEE, 2025, 45(5): 1980-1992. DOI: 10.13334/j.0258-8013.pcsee.232393
Citation: GAO Chunjia, QI Bo, CHEN Congcong, ZHAO Xiaolin, WANG Ke, ZHANG Shuqi, LI Chengrong. Influencing Mechanism of Oil Gap Spacing on Space Electric Field in Oil and Oil-pressboard Interface Charge Under DC Electric Field[J]. Proceedings of the CSEE, 2025, 45(5): 1980-1992. DOI: 10.13334/j.0258-8013.pcsee.232393

直流电场下变压器油隙间距对油中空间电场及界面电荷特性影响机理

Influencing Mechanism of Oil Gap Spacing on Space Electric Field in Oil and Oil-pressboard Interface Charge Under DC Electric Field

  • 摘要: 换流变压器油纸复合绝缘中的多层不等间距油隙结构对油中电场及界面电荷的影响尚不明确。该文利用Kerr电光效应,获得不同外施电压下典型双层油纸复合绝缘模型油中电场分布及油纸界面电荷积聚特性,揭示“高油中场强”及“宽油隙间距”联合作用下的“油隙间距效应”。研究表明:1)当油中场强较低时,正极性侧油中场强始终较高;2)当外施电压增加至+25 kV,随着上/下油隙间距之比由1:5增大到4.5:1.5,正极性侧油中场强逐渐降低,超过该比例后出现场强分布“反转”;3)明确了相邻油隙场强分布“反转”的阈值:即间距比3:1时油中场强阈值1.00 kV/mm,间距比≥5:1时场强阈值降至0.55 kV/mm;4)宽油隙为离子解离提供了更多的油中初始电荷,且高场强加剧了电荷解离/复合现象,导致宽油隙侧的油纸界面电荷数量增加,超过“极性效应”影响,增强了对侧油隙场强。研究结果可为换流变压器油纸绝缘结构设计优化提供相关理论依据和技术支持。

     

    Abstract: The impact of the multi-layer, unequal-spacing oil gap structure in the oil-pressboard composite insulation of converter transformers on the oil electric field and interface charge remains unclear. This study employs the Kerr electro- optic effect to acquire the electric field distribution in oil and the interface charge accumulation characteristics in a typical two-layer oil- pressboard composite insulation model under different applied voltages. It reveals the "oil gap spacing effect" under the combined influence of "high oil field strength" and "wide oil gap spacing". The study shows the following findings: 1) When the electric field strength in the oil is low, the electric field strength on the positive polarity side of the oil is consistently higher; 2) As the applied voltage increases to +25 kV, and the ratio of the upper/lower oil gap spacing increases from 1:5 to 4.5:1.5, the electric field strength on the positive polarity side of the oil gradually decreases, with a field strength distribution "reversal" occurring once this ratio exceeds a certain threshold; 3) The threshold for the "reversal" of the electric field strength distribution in adjacent oil gaps is clarified: when the spacing ratio is 3:1, the threshold electric field strength in the oil is 1.00 kV/mm, and when the spacing ratio is beyond 5:1, the threshold electric field strength reduces to 0.55 kV/mm; 4) The wider oil gaps provide more initial charge in the oil, and the intensified electric field exacerbates charge dissociation and recombination, resulting in an increase in the interface charge on the oil-pressboard interface on the wide oil gap side, surpassing the "polarization effect, " and thereby enhancing the electric field strength in the opposite oil gap. The research findings provide theoretical and technical support for the optimization of the design of oil-pressboard insulation structures in converter transformers.

     

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