填充型聚合物复合材料介电损耗与相间结构的关系

Zhu Yutao, Cheng Cheng, J. Weifang, Xie Hengkun, Liu Yaonan
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引用次数: 2

摘要

实际使用的高分子材料或体系通常是多相的,其中存在宏观或微观界面。为改性目的而引入的填充颗粒所形成的微观界面,由于其体积或表面积大,应进行分析。当填料与聚合物基体相容性不好时,复合材料的电性能和力学性能变化显著,而复合材料的内部过程非常复杂。当填充聚合物用作绝缘体时,它们的介电损耗是如何增加的?一般来说,复合系统的介电响应依赖于每个相位的特性及其在电路中的构成。此外,在电场作用下,两种不同介质之间存在界面极化,从而导致额外的介电损耗。复合体系的介电损耗切线的变化是难以确定的,因为称为界面的过渡区域的物理和化学组成仍然不清楚。在有机和无机填料填充的EPR样品中,观察到显著的损失增量,并对其进行了分析;并进行了力学性能测试,明确了相间状态。通过控制各介电相的各种参数和混合,可以获得具有满意介电性能和力学性能的聚合物复合材料的成型工艺。在评价填充型复合材料系统的介电损耗时,应同时考虑混合电路效应和界面极化效应。界面极化过程非常复杂,根据填料的分散情况,弛豫时间分布范围很广。聚合物之间的界面层是模糊的,没有明显的界面极化,过渡区新出现的极性基团导致复合材料的介电损耗。而无机填料颗粒引入的间相较为清晰,填料电导率大于10/sup - 9 S/m。在50Hz左右的场强下,界面发生弛豫,导致tan /spl δ /增大;这种不希望的效果是通过硅烷处理填料减弱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Relationship between dielectric loss and interphase structure of filled-type polymer composites
Polymeric materials or systems in practical use are generally heterogeneous, in which macroscopic or microscopic interfaces exist. Microscopic interfaces formed by filler particles introduced for property modifying purpose should be analysed due to their large volume or surface area. Changes of electrical and mechanical properties of composites are always remarkable when compatibility between fillers and polymer matrix is not good, while the internal process are very complicated. How does the dielectric loss of filled polymers increase when they are applied as insulators? Generally the dielectric responses of a composite system rely on characteristics of each phase and their make-up on circuits. Moreover, there is interfacial polarisation between two different dielectrics under a field, from which results an additional dielectric loss. Changes on dielectric loss tangent of the composite system are difficult to determine because the physical and chemical composition of a transitional region called interphase is still not clear. In the samples of EPR filled with organic and inorganic fillers, remarkable loss increments are observed and are analyzed; and mechanical property measurements are conducted to make clear the interphase condition. By controlling various parameters of each dielectric phase and the mixing, moulding processes for polymer composites with satisfactory dielectric and mechanical properties can be obtained. To evaluate the dielectric loss of filled-type composite system mixed circuits effects and interfacial polarisation effect should be both considered. Interfacial polarisation has very complicated processes, and the relaxation time has a wide-range distribution according to dispersed condition of fillers. Interphase layer between polymers is vague where there is no remarkable interfacial polarisation, newly-emerged polar groups in transitional region contribute to dielectric loss of the composite. However interphase introduced by inorganic filler particle is clear, with filler conductivity more than 10/sup -/9 S/m. Interfacial relaxation occurs under field around 50Hz and causes increased tan /spl delta/; this unwished-for effect is weakened through silane treatment of filler.
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