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Effect of additives on the performance of cross-linked polyethylene subjected to long term single and periodically reversed polarity DC voltage

机译:添加剂对长期单极性和周期性反极性直流电压下交联聚乙烯性能的影响

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The performance of cross-linked polyethylene with and without tree-retarding additives, aged with single and reversed polarity DC voltage was investigated. Under single polarity field of a 50 kV/mm, cross-linked polyethylene without the tree retardant (XLPE) showed significantly longer time to breakdown than the material with a tree retardant (TR-XLPE). This is attributed to the difference in how the two materials accumulate and retain space charge. In the case of polarity reversals, TR-XLPE showed better performance than XLPE. This seeming contradiction was studied by measuring the dynamics of space charge evolution with time. The Thermal Step Method (TSM) of space charge measurements was used. It showed that after the polarity reversal the TSM current rapidly inversed in the TR-XLPE but not in the XLPE. This implies more rapid charge dissipation in TR-XLPE. The retained charges cause the electric field enhancement in the material when the polarity is reversed. Thus, after each polarity reversal XLPE was subjected to higher local electric stress for a longer time and thus broke down sooner than TR-XLPE. For both materials the space charge decreased faster when the polarity was changed from negative to positive than vice versa. This could be explained by more efficient electron than holes injection. Since the control of the power flow in DC networks requires reversals of voltage polarity, their detrimental effect on XLPE-insulated equipment, such as cables, cannot be avoided. The effect could be mitigated by the application of carefully designed additives. However, as the present study indicates, additives that improve insulation performance under polarity reversals can be harmful under single polarity voltage.
机译:研究了在单极性和反极性直流电压下老化的交联聚乙烯在有无树状添加剂的情况下的性能。在单极性电场为50 kV / mm的情况下,没有树状阻滞剂(XLPE)的交联聚乙烯的击穿时间比具有树状阻滞剂(TR-XLPE)的材料更长。这归因于两种材料在积累和保留空间电荷方面的差异。在极性反转的情况下,TR-XLPE的性能优于XLPE。通过测量空间电荷随时间变化的动力学研究了这种表面矛盾。使用空间电荷测量的热步法(TSM)。结果表明,极性反转后,TS-电流在TR-XLPE中迅速反转,而在XLPE中却没有。这意味着TR-XLPE中的电荷消耗更快。当极性反转时,保留的电荷会导致材料中的电场增强。因此,在每次极性反转之后,XLPE承受较高的局部电应力的时间更长,因此比TR-XLPE更快地击穿。对于这两种材料,当极性从负变为正时,空间电荷的下降速度快,反之亦然。这可以用比空穴注入更有效的电子来解释。由于控制DC网络中的潮流需要颠倒电压极性,因此无法避免它们对XLPE绝缘设备(例如电缆)的有害影响。通过使用精心设计的添加剂可以减轻这种影响。但是,正如本研究表明的那样,在极性反转的情况下改善绝缘性能的添加剂在单极性电压下可能有害。

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