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Charging behavior of polyethylene and ionomers

机译:聚乙烯和离聚物的充电行为

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Space charge may lower the breakdown strength of solid insulation by making local electric fields bigger than the applied field. One extensive study[1] of this phenomenon led to a proposal to blend crosslinked polyethylene (XLPE) insulation with an ionomer to reduce space charge build-up. The authors used contact electrification (no applied field) as a measure of the tendency for a polymer to charge under an applied field and found that the XLPE acquired negative charge, the ionomer positive charge and a blend of the two acquired much less net charge than either component. The reverse-polarity breakdown strength of the blend was found to be higher than that of XLPE and this was related to its reduced contact charging. We have extended this work to test the above ideas and proposal for improving the performance of XLPE-insulated cables. In our study we measured electric field distributions in films of polyethylene, ionomers and blends charged by applying 0 to 50 V/μm at temperatures between 20 and 80°C for times up to 100 hours. These electric field measurements show more directly, than do contact charging data, the charging behavior that occurs in the bulk of coaxial DC power cable insulation in service under an applied field.
机译:空间电荷可能会使局部电场大于外加电场,从而降低固体绝缘的击穿强度。对此现象的一项广泛研究[1]导致提出了一种将交联聚乙烯(XLPE)绝缘材料与离聚物混合的提议,以减少空间电荷的积累。作者使用接触带电(未施加电场)作为聚合物在施加电场下充电的趋势的量度,发现XLPE获得的负电荷,离聚物的正电荷以及两者的混合物比获得的净电荷少得多任一组件。发现共混物的反极性击穿强度高于XLPE,这与其减少的接触电荷有关。我们已经扩展了这项工作,以测试上述想法和建议,以提高XLPE绝缘电缆的性能。在我们的研究中,我们通过在20至80°C的温度下施加0至50 V /μm的时间长达100小时来测量聚乙烯,离聚物和共混物薄膜的电场分布。与接触充电数据相比,这些电场测量更直接地显示了在应用电场下在使用中的大部分同轴直流电源电缆绝缘中发生的充电行为。

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