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Toward understanding the relationship between insulation recovery and micro structure in water tree degraded XLPE cables

机译:理解水树降解XLPE电缆的绝缘恢复与微观结构之间的关系

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摘要

In this paper, to understand the insulation recovery phenomenon of water-tree cables when an applied voltage is removed, the insulation recovery mechanism of the water tree cable is analyzed. A water-needle electrode is used in an accelerated water-tree aging experiment for XLPE (Cross Linked Polyethylene) cables. The dielectric loss factor (tan??) increases with aging time, but it gradually returns to a lower level once the applied voltage is removed for some time, which means that the insulation recovery of the water tree cables possibly occurs during the process. Depending on the geometric size by micro observations of water-tree slices, a watertree model is constructed for electric field simulation, which includes a series of water-filled micro voids and interconnected channels. According to analysis of the electric field force and the mechanical properties of water tree region, the force generated by the elastic deformation of the molecular chains results in the shrinking of the channels. The water is gradually squeezed out of the channels, which causes the gradual decrease of conductivity and relative dielectric constant in channels. According to the computed results of tan?? at different states of water tree, the reduction of tan?? can be mainly caused by the decrease of conductivity and relative dielectric constant in channels. The time needed for insulation recovery may be determined by the internal electric field in the water tree, the mechanical relaxation time of XLPE, and the diffusion of water.
机译:为了了解去除电压后水树电缆的绝缘恢复现象,分析了水树电缆的绝缘恢复机理。水针电极用于XLPE(交联聚乙烯)电缆的加速水树老化实验中。介电损耗因子(tanδ)随着老化时间的增加而增加,但是一旦去除施加的电压一段时间,它就会逐渐恢复到较低的水平,这意味着在该过程中可能发生水树电缆的绝缘恢复。根据对水树切片进行微观观察的几何尺寸,构建了用于电场模拟的水树模型,该模型包括一系列充满水的微空隙和相互连接的通道。根据对电场力和水树区域力学性能的分析,分子链的弹性变形产生的力导致通道的收缩。水逐渐从通道中挤出,这导致通道中的电导率和相对介电常数逐渐降低。根据tanδ的计算结果在水树的不同状态下,棕褐色的减少造成这种现象的主要原因是通道中电导率和相对介电常数的降低。绝缘恢复所需的时间可以由水树中的内部电场,XLPE的机械弛豫时间和水的扩散来确定。

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