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Effect of Elastomer Content on Interface Discharge Behavior Between Polypropylene and Silicone Rubber Under AC Voltage

机译:弹性体含量对AC电压下聚丙烯和硅橡胶界面放电行为的影响

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Polypropylene (PP) as a thermoplastic polymer with high breakdown strength as well as high melting point has been considered as a promising candidate for the new generation recyclable cable insulation. However, the tensile yield strength and modulus of elasticity of PP are too large, and the mechanical properties of PP can not meet the requirements of cable materials. In this paper, two kinds of elastomers, i.e. ethylene-octene copolymer (POE) and propylene-based elastomer (PBE), were used to improve the flexibility of polypropylene (PP) so as to make it proper for the main insulation of recyclable power cable. The microstructure of the blends was inspected under electron microscope, and the mechanical properties were tested and compared in this paper. It has been generally accepted that the weak point in a long cable route is cable accessory which connects each cable segment with typical length of several hundred meters. Due to the complex structure of high voltage power cable joints, the electric field is distorted, which is likely to induce interface discharge between the cable insulation and joint insulation. By simulating the electric field distribution of a cable joint, the effect of elastomer content on the interfacial breakdown of PP/SiR was investigated. The test results show that the addition of POE and PBE can greatly prolong the breakdown time of the PP/SiR interface. Discharge initiation time of (PP+POE)/SiR interface is longer than that of (PP+PBE)/SiR, while (PP+POE)/SiR discharge development time is shorter than that of (PP+PBE)/SiR. It is suggested that the decrease of elastic modulus results in the presence of smaller size of air cavities along the interface, which leads to the delay of breakdown time. In addition, the difference of microstructure and trap distribution caused by different compatibilities between the two elastomers and PP is the main factor affecting the interfacial breakdown process.
机译:聚丙烯(PP)作为具有高击穿强度以及高熔点的热塑性聚合物,被认为是新一代可回收电缆绝缘的有希望的候选者。然而,PP的拉伸屈服强度和弹性模量太大,PP的机械性能不能满足电缆材料的要求。在本文中,使用两种弹性体,即乙烯 - 辛烯共聚物(POE)和丙烯基弹性体(PBE)来改善聚丙烯(PP)的柔韧性,以使其适用于可回收力的主要绝缘电缆。在电子显微镜下检查共混物的微观结构,并在本文中进行测试和比较机械性能。已经普遍认为,长电缆路线中的弱点是电缆配件,该电缆配件连接每个电缆段,典型的长度数百米。由于高压电力电缆接头的复杂结构,电场变形,这可能会导致电缆绝缘和关节绝缘之间的接口放电。通过模拟电缆接头的电场分布,研究了弹性体含量对PP / SIR界面分解的影响。测试结果表明,添加PoE和PBE可以大大延长PP / SIR接口的击穿时间。 (PP + POE)/ SIR接口的放电启动时间比(PP + PBE)/先生的互联网(PP + POE)/ SIR放电开发时间短于(PP + PBE)/ SIR。建议,弹性模量的降低导致沿界面存在较小尺寸的空气腔,这导致击穿时间的延迟。此外,两种弹性体和PP之间的不同相容性引起的微观结构和陷阱分布的差异是影响界面击穿过程的主要因素。

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