Transformer winding deformation accompanied by magnetic flux leakage field distribution variation and its diagnostic analysis of deformation degree

Hongliang Liu, Shuguo Gao, Lu Sun, Yuan Tian
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Abstract

During the transformer winding deformation process, the leakage magnetic field around the winding will change accordingly. Therefore, it is an effective method to monitor and track the change of the leakage magnetic field and then analyze and judge the state of the transformer. This paper firstly uses Comsol Multiphysics software to establish a 110 kV transformer electromagnetic simulation calculation model. Based on the simulation results of magnetic leakage distribution, an installation plan for the internal magnetic leakage sensor of a 110 kV true transformer is determined. The measurement results of the true single short-circuit test under different working conditions verify the accuracy of the simulation model. Subsequently, a number of B-phase high-centered three-phase short circuit (H-M B) true type tests were carried out, and the relationship between the magnetic leakage distribution characteristics and the impedance change rate after each impact was analyzed. The results show that before the transformer is seriously deformed due to multiple short circuit shocks, the sensitivity of the impedance change rate to the winding deformation is low, and the first five shocks only increase from 0.11% to 0.39%. However, the difference ratio between the simulation value and the test value of magnetic flux leakage (MFL) has obvious changes in each small deformation. BX3 increases from 1.77% to 5.62%, and BX4 increases from 2.08% to 6.55%. The difference ratio of four shocks before winding deformation is more than 6%. Therefore, by monitoring the flux leakage magnetic induction intensity, when the difference ratio is greater than 6%, strengthen the vigilance, which can provide a certain basis for winding monitoring before serious deformation.
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变压器绕组变形伴随漏磁场分布变化及其变形程度诊断分析
在变压器绕组变形过程中,绕组周围的漏磁场会发生相应的变化。因此,监测和跟踪漏磁场的变化,进而分析和判断变压器的状态是一种有效的方法。本文首先利用Comsol Multiphysics软件建立了110kv变压器电磁仿真计算模型。根据漏磁分布仿真结果,确定了110 kV真变压器内漏磁传感器的安装方案。不同工况下的真单次短路试验测量结果验证了仿真模型的准确性。随后,进行了多次B相高心三相短路(H-M - B)真型试验,分析了每次冲击后漏磁分布特性与阻抗变化率的关系。结果表明,在变压器因多次短路冲击而严重变形前,阻抗变化率对绕组变形的敏感性较低,前5次冲击仅从0.11%增加到0.39%;而漏磁模拟值与试验值之差比在每一次小变形中都有明显变化。BX3从1.77%增加到5.62%,BX4从2.08%增加到6.55%。绕组变形前的四次冲击差比大于6%。因此,通过监测漏磁的磁感应强度,当差比大于6%时,加强警惕,可以为绕组严重变形前的监测提供一定的依据。
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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