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Method to distinguish between space-charge and dipolar relaxation in the TSDC spectra of polyethylene electrical insulation

机译:在聚乙烯电绝缘的TsDC光谱中区分空间电荷和偶极弛豫的方法

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摘要

Medium-voltage cross-linked polyethylene (MV-XLPE) cables have an important role in the electrical power distribution system. For this reason, the study of XLPE insulation may lead to improve cable features and lifetime. Although relaxational analysis yield a lot of information about XLPE properties, sometimes their results are difficult to interpret. To overcome this handicap, we have used a combination of thermally stimulated depolarization currents (TSDC) and isothermal depolarization currents (IDC) techniques. In order to discard spurious effects from the semiconductor interfaces, preliminary measurements have been done on specially prepared cables. TSDC have been performed using conventional poling between 140°C and 40°C. IDC measurements also have been carried out at temperatures between 90°C and 110°C in 2°C steps. The TSDC spectra are dominated by a broad peak of uncertain origin. On the other hand, IDC show a combination of power and exponential currents. Exponential currents are fitted to a KWW model. The relaxation times obtained from the model present an Arrhenius behavior with Ea = 1.32 eV and τ0 = 3.29×10-16 s. The KWW parameter obtained is β = 0.8. The calculated depolarization current given by the exponential relaxation matches the predominant peak of TSDC spectra. Therefore, we conclude that in the MV cables studied the most visible peak of the TSDC spectrum has a dipolar origin.
机译:中压交联聚乙烯(MV-XLPE)电缆在配电系统中具有重要作用。因此,对XLPE绝缘的研究可能会改善电缆的性能和使用寿命。尽管松弛分析产生了许多有关XLPE性能的信息,但有时其结果难以解释。为了克服这一障碍,我们结合使用了热激励去极化电流(TSDC)和等温去极化电流(IDC)技术。为了消除半导体接口的杂散效应,已经对特别准备的电缆进行了初步测量。 TSDC是使用140°C至40°C的常规极化进行的。 IDC测量也已在90°C和110°C之间的温度下以2°C的步长进行。 TSDC光谱以不确定来源的宽峰为主。另一方面,IDC显示出功率和指数电流的组合。指数电流适合KWW模型。从模型获得的弛豫时间呈现出Arrhenius行为,Ea = 1.32 eV,τ0= 3.29×10-16 s。获得的KWW参数为β= 0.8。由指数弛豫给出的计算出的去极化电流与TSDC谱的主要峰相匹配。因此,我们得出的结论是,在研究的中压电缆中,TSDC光谱中最可见的峰具有偶极起源。

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