A Review of Polypropylene and Polypropylene/Inorganic Nanocomposites for HVDC Cable Insulation

Du Boxue, Z. Hou, Li Jin
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引用次数: 7

Abstract

Due to its excellent electrical and thermal performance, as well as satisfying the needs for developing the environmentally friendly and recyclable cable insulation material, polypropylene has caused widespread concern. Nanodoping can effectively improve the electrical, thermal and mechanical properties of polypropylene nanocomposites, which provides a new method to solve the problems in its application in HVDC cable insulation. This chapter introduces research achievements on polypropylene and polypropylene/inorganic nanocomposites, which states the effects of nanodoping on the electrical properties, such as space charge behaviors, electrical tree aging, breakdown strength, etc. thermal conductivity and mechanical properties of the polypropylene and its multi-blends. The aging mechanism under different conditions is also discussed. The analysis shows that the sur face treatment of nanoparticles can reduce the aggregation of nanoparticles and strengthen the interface effect, thus improving the comprehensive properties of polypropylene nano composites. This chapter also summarized the feasibility and future development of the polypropylene and its nanocomposites application in the insulation of HVDC cables. insulation material under the complex working conditions of high-voltage DC. Nanodoping can effectively improve the overall performance of polypropylene monomer and multicomponent blended composites, such as suppression of space charge accumulation, resistance to aging of electrical branches, improvement of dielectric strength such as breakdown strength, and improvement of thermal conductivity, tensile strength, and elasticity. Modulus and other thermal, mechanical properties, and nanofiller on the electric and thermal aging properties of the polypropylene composite material improvement effect is also very obvious.
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高压直流电缆绝缘用聚丙烯及聚丙烯/无机纳米复合材料研究进展
聚丙烯由于其优良的电气性能和热工性能,以及满足开发环保、可循环利用的电缆绝缘材料的需要,引起了人们的广泛关注。纳米掺杂可以有效改善聚丙烯纳米复合材料的电学、热学和力学性能,为解决其在高压直流电缆绝缘中的应用问题提供了一种新的方法。本章介绍了聚丙烯和聚丙烯/无机纳米复合材料的研究成果,阐述了纳米掺杂对聚丙烯及其复合共混物的空间电荷行为、电树老化、击穿强度等电学性能的影响。讨论了不同条件下的老化机理。分析表明,纳米颗粒的表面处理可以减少纳米颗粒的聚集,增强界面效应,从而提高聚丙烯纳米复合材料的综合性能。总结了聚丙烯及其纳米复合材料在高压直流电缆绝缘中的应用可行性和发展前景。绝缘材料在高压直流的复杂工作条件下。纳米掺杂可以有效提高聚丙烯单体和多组分共混复合材料的综合性能,如抑制空间电荷积累、抗电支路老化、提高击穿强度等介电强度、提高导热性、抗拉强度和弹性等。模量等热、力学性能,以及纳米填料对聚丙烯复合材料的电学和热老化性能的改善作用也非常明显。
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A Review of Polypropylene and Polypropylene/Inorganic Nanocomposites for HVDC Cable Insulation Analysis for Higher Voltage at Downstream Node, Negative Line Loss and Active and Reactive Components of Capacitor Current, and Impact of Harmonic Resonance The Performance of Insulation and Arc Interruption of the Environmentally Friendly Gas CF3I Introductory Chapter: New Challenges in High-Voltage Engineering
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