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Interface Characteristic of Extrusion-Molded joints of 500kV Submarine Cables

机译:500kV潜艇电缆挤出成型接头的界面特性

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As a key accessory made from the crosslinked polyethylene (XLPE) in high-voltage (HV) insulated submarine cable, the EMJ joints represent unpredictable uncertainty in production reliability due to workmanship issues. Dielectric cracks in the size of tens of micrometers in insulation interfaces are identified as a string of voids to dominate insulation damages. The abnormal arrangements of XLPE lamellae observed by scanning electron microscope (SEM) imply that the structural micro-cracks will be formed under interface stresses. Electrical tree inception is facilitated to a faster propagation due to the poor dielectric property of the interface region, manifesting as 30% lower of tree inception voltage, which is attributed to the longer free-paths for accelerating charge carries in the cracks of interface region and will stimulate partial discharging from needle electrodes. The carbonized micro-discharging channels only arising in interface region suggest that the micro-discharging channels can be triggered by the voids in cracks and will finally develop into electrical breakdown of insulation damage. The mechanism of forming cracks in the fusion processes between the molten XLPE of cable and the molten XLPE of recovery insulation is elucidated.
机译:作为由高压(HV)绝缘电缆中的交联聚乙烯(XLPE)制成的关键配件,EMJ接头代表了由于工艺问题导致的生产可靠性的不确定性。绝缘界面中数十微米尺寸的介电裂缝被识别为一个空隙,以支配绝缘损坏。通过扫描电子显微镜(SEM)观察到XLPE薄片的异常布置意味着结构微裂纹将在接口应力下形成。由于接口区域的介电性能差,表现为树立初始电压的差,因此归因于界面区域的加速电荷的较长直径较低,因此促进了更快的传播将刺激从针电极的部分排出。仅在界面区域中产生的碳化的微放电通道表明微放电通道可以通过裂缝中的空隙触发,并且最终会发展成绝缘损坏的电损伤。阐明了熔融XLPE与回收绝缘材料的熔融XLPE之间的融合过程中形成裂缝的机理。

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