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Improved DC Dielectric Performance of cPP-g-MAH/iPP/SEBS Composite with Chemical Graft Modification

机译:化学接枝改性提高cPP-g-MAH / iPP / SEBS复合材料的直流介电性能

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摘要

In order to achieve both high toughness and favorable dielectric properties of polypropylene materials, a styrene–butadiene–styrene block copolymer (SEBS) was employed as a toughening filler, in addition to a copolymerized polypropylene grafted by maleic anhydride (cPP-g-MAH) as a compatibilization modifier, to develop a novel isotactic polypropylene (iPP) composite (cPP-g-MAH/iPP/SEBS composite) with significantly improved direct-current (DC) dielectric performance and tenacity. The underlying physical and chemical mechanisms of modifying electric insulation were studied utilizing micro-structure characterization methods in combination with multiple thermal–mechanic–electric tests. The SEBS phase islands are uniformly distributed in the PP matrix with evidently improved dispersion due to cPP-g-MAH compatibilization. Compared with iPP, the elastic modulus of cPP-g-MAH/iPP/SEBS composites can be reduced by 58% with doubled thermal elongation, which is still superior to that of cross-linked polyethylene (XLPE), implying that the composites are qualified in terms of mechanical properties for use as power cables. The space charge accumulation and electric conduction are considerably suppressed in comparison with pure iPP and the iPP/SEBS composite. In the interest of charge-trapping characteristics modified by chemically grafting MAH, the deep traps introduced into polypropylene by grafting MAH were measured with a thermal stimulation current experiment to be 1.2 and 1.6 eV of energy level in trapping depth, verified through the first-principles electronic structure calculations with an all-electron numerical orbital scheme. It was concluded that the acquired high density of deep traps can effectively restrict the carrier transport and suppress the injection of space charge, resulting in a remarkable improvement of DC dielectric properties for the MAH grafted composites. The present work demonstrates that the cPP-g-MAH/iPP/SEBS composites are eligible to be applied to polypropylene-based high-voltage DC cables due to their excellent DC insulation performance, together with the appropriate mechanical properties.
机译:为了实现聚丙烯材料的高韧性和良好的介电性能,除了采用马来酸酐接枝的共聚聚丙烯(cPP-g-MAH)外,还采用苯乙烯-丁二烯-苯乙烯嵌段共聚物(SEBS)作为增韧填料。作为增容改性剂,开发出一种新型的全同立构聚丙烯(iPP)复合材料(cPP-g-MAH / iPP / SEBS复合材料),具有显着改善的直流电(DC)介电性能和韧性。利用微观结构表征方法结合多种热-机械-电测试,研究了电绝缘改性的基本物理和化学机理。由于cPP-g-MAH的相容性,SEBS相岛均匀地分布在PP基质中,分散性得到明显改善。与iPP相比,cPP-g-MAH / iPP / SEBS复合材料的弹性模量可以降低58%,而热伸长率却提高了一倍,这仍然优于交联聚乙烯(XLPE),这表明该复合材料合格就用作电力电缆的机械性能而言。与纯iPP和iPP / SEBS复合材料相比,空间电荷的积累和导电受到了显着抑制。为了通过化学接枝MAH改进电荷俘获特性,通过热刺激电流实验测量了通过接枝MAH引入聚丙烯的深陷阱的能级为陷阱能级的1.2和1.6 eV能级,并通过第一原理验证了这一点。全电子数值轨道方案的电子结构计算。结论是,获得的高密度深陷阱可以有效地限制载流子的传输并抑制空间电荷的注入,从而显着改善了MAH接枝复合材料的直流介电性能。目前的工作表明,cPP-g-MAH / iPP / SEBS复合材料由于其出色的直流绝缘性能以及适当的机械性能,因此可用于聚丙烯基高压直流电缆。

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