分子结构修饰和纳米掺杂对绕线绝缘聚酰亚胺薄膜电荷输运的影响

B. Du, R. Xu, J. Xing, Li Jin
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引用次数: 0

摘要

聚酰亚胺(PI)广泛应用于超高压电抗器、变频电机等高压器件的绕组绝缘。电荷在PI薄膜表面的注入和积累会导致电场畸变,降低绕组绝缘的寿命,特别是在高温高压的工作环境中。本章主要研究表面分子修饰和纳米粒子对纯PI膜表面电荷和空间电荷动态特性的影响,共分为三个部分。首先研究了分子结构对PI膜表面电荷动力学的影响。本章研究了分子结构对聚酰亚胺纳米复合膜表面电荷的影响。进一步研究了表面分子修饰对多层PI膜空间电荷特性的影响。结果表明,表面分子修饰和纳米颗粒可以全面抑制空间电荷积累,改善介电性能。
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Effect of Molecular Structure Modification and Nano-Doping on Charge Transportation of Polyimide Films for Winding Insulation
Polyimide (PI) is widely employed as winding insulation in high voltage devices, such as extra-high voltage electric reactor and inverter-fed motor. The injection and accumulation of charges on the surface of PI films will lead to electrical field distortion and reduced lifespan of winding insulation, especially for the operation environment of high temperature and high voltage. This chapter focuses on effects of surface molecular modification and nanoparticles on dynamic characteristics of surface charge and space charge of pure PI films, including three sections. The effect of molecular structure on the surface charge dynamics of PI films was studied firstly. The chapter investigated that how molecular structure affects surface charge of polyimide nanocomposite films. Furthermore, the effect of surface molecular modification on space charge characteristics of multilayer PI films was researched. The results illustrate that surface molecular modification and nanoparticles can comprehensively suppress space charge accumulation and improve dielectric property.
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