评定电绝缘用可愈合、低场照明光电可拉伸材料的热学和介电特性

V. Nikolić, P. Kadlec, R. Polanský, Wang Guanxiang, Benjamin C. K. Tee
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引用次数: 0

摘要

以聚偏氟乙烯(PVDF)基氟弹性体为基体,加入少量非离子型氟化表面活性剂,研究了一种本征自愈材料作为电绝缘材料的候选材料。利用傅里叶变换红外光谱和同步热分析分析了其结构和热性能。宽带介电光谱,体积和表面电阻率,以及介电强度测量提供了介电性能的全面概述。该材料具有较高的热稳定性(200℃),低介电强度为13 kV/mm,体积和表面电阻率分别为1.07E+09 $\Omega\cdot$ cm和1.94E+09 $\Omega$。由于各种极化效应,在温度高于30°c和低频(50 Hz)时,相对介电常数值通常较高,并随着损耗因子的增加而增加。高压试验还发现,自愈材料的分解是由点火区产生的熔体相碳化引起的。尽管自修复层在破坏性破坏后不久就会出现,但由于材料的低粘度,通道恢复活性并不一致。在一种新型的基于偶极子-偶极子的自愈材料复合材料上获得的这些初步结果可以作为进一步开发的参考点-在保持其自愈能力的同时降低系统的整体极性并改善介电性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessing thermal and dielectric characteristics of healable, low-field illuminating optoelectronic stretchable material for electrical insulating purposes
An intrinsic self-healing material composed of poly-vinylidene-fluoride (PVDF) based fluoroelastomer with the addition of a small amount of non-ionic fluorinated surfactant was studied as a candidate material for electrical insulating purposes. Structural and thermal properties were analyzed with Fourier transform infrared spectroscopy and simultaneous thermal analysis. Broadband dielectric spectroscopy, volume and surface resistivity, and dielectric strength measurements provided a comprehensive overview of the dielectric properties. The material has a relatively high thermal stability (200 °C), a low dielectric strength of 13 kV/mm, and volume and surface resistivities of 1.07E+09 $\Omega\cdot$ cm and 1.94E+09 $\Omega$, respectively. Due to various polarization effects, relative permittivity values are generally higher and increase with the loss factor at temperatures above 30 °c and at low frequencies (50 Hz). It was also found from high voltage testing that decomposition of the self-healing material was initiated by carbonization of the melt phase generated in the ignition area. Although a self-healing layer arises shortly after the destructive breakdown, the channel recovery activity is not consistent because of the material’s low viscosity. These initial results obtained on a novel dipole-dipole based self-healing material composite can serve as a reference point for further development – to reduce the overall polarity of the system and improve the dielectric properties, while maintaining its selfhealing ability.
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