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Characterization of the volume conductivity and the polarization behavior of biaxially-oriented polyester films for use in HVDC bushings

机译:在HVDC衬套中使用双轴取向聚酯薄膜的体积电导率和偏振行为的表征

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The electric Field distribution inside a bushing is given by capacitive and resistive components of the insulation materials. Capacitive components can be controlled by conductive foils which form a grading. In this case, the layers of a bushing core represent metal-insulator arrangements. The DC field distribution is dominated by the resistive components. They can be subdivided into volume and surface resistances. In the case of metal-insulator-metal contacts, the used metal and its contact to the insulator may influence the observed resistances. In order to calculate the DC electric field within a bushing core, the specific volume and surface conductivity must be known. For DC applications, solid-gas insulated bushings with polymeric insulation materials are an alternative to oil or resin impregnated paper bushings because of the significant lower resistive losses. Therefore, polarization and depolarization current (PDC) measurements of polyester films will be presented. By using a guard ring arrangement, volume and surface effects can be separated. The presented measurements are taken at different temperatures (25 °C up to 75 °C) and controlled humidity (< 1%). Aluminum foils are used for contacting the test sample as they are often used in capacitive graded bushings. Massive electrodes (contact pressure of 2 kPa) are put on to guarantee entirely contact to the sample. The test arrangement is shielded in order to reduce background noise. Due to measure very low currents (< 10 pA), the arrangement is also shielded against vibrations and controlled against offset shifts. The measurements show a decreasing noise level caused by the measurement data preparation. The maximum standard deviation of the current was less than 2 pA. The results from the PDC measurement will be compared with measurements taken by the recovery voltage method. The Curie-von Schweidler law for the depolarization current as well as the Arrhenius law for the temperature dependency of the volume conductivity will be taken into account to discuss the measurement results.
机译:衬套内的电场分布由绝缘材料的电容和电阻部件给出。电容组件可以通过形成分级的导电箔来控制。在这种情况下,衬套芯的层代表金属绝缘体布置。 DC场分布由电阻组件主导。它们可以细分为体积和表面电阻。在金属绝缘体 - 金属触点的情况下,用过的金属及其与绝缘体的接触可以影响观察到的电阻。为了计算衬套内部的直流电场,必须知道特定的体积和表面电导率。对于直流应用,具有聚合物绝缘材料的固体气体绝缘衬套是油或树脂浸渍纸衬套的替代,因为电阻损耗显着较低。因此,将呈现聚酯薄膜的偏振和去极化电流(PDC)测量。通过使用保护环布置,可以分离体积和表面效果。所提出的测量在不同的温度下(25°C至75℃)和受控湿度(<1 %)。铝箔用于接触测试样品,因为它们通常用于电容分级衬套。挤压电极(2kPa的接触压力)被佩戴,以保证完全接触样品。测试装置被屏蔽,以减少背景噪声。由于测量非常低的电流(<10 pa),该布置也屏蔽振动并控制偏移偏移。测量结果显示了由测量数据准备引起的噪声水平降低。电流的最大标准偏差小于2 PA。 PDC测量结果将与恢复电压方法采取的测量进行比较。将考虑到Depolarization Current的Curie-Von Schweidler定律以及体积电导率的温度依赖性的Arrhenius法律,以讨论测量结果。

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