环氧纳米复合材料介电常数的建模

T. Andritsch, R. Kochetov, P. Morshuis, J. Smit, A. Vaughan
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引用次数: 12

摘要

聚合物纳米复合材料表现出许多理想的介电性能,如增强的抗局部放电、电树、直流击穿强度,或减少空间电荷的摄入。介电常数是可以观察到引入纳米粒子直接影响的性质之一。许多应用将受益于定制绝缘的介电常数的能力。如果电缆系统和地理信息系统间隔装置能够得到相应的控制和利用,则需要减少它们,例如电缆系统和地理信息系统间隔装置,并增加它们,例如电容器。因此,人们对预测填充材料如何改变介电常数很感兴趣。研究复合介电常数问题的理论方法主要有两大类。有效介质理论,利用平均场或极化率和诱导偶极矩,以及积分方法,使用低浓度公式并将其集成到高浓度。当模拟纳米复合材料的介电常数时,这两种方法都难以获得令人满意的结果。这一探索性的工作试图通过考虑宿主-聚合物界面来估计体介电常数,聚合物纳米复合材料的许多惊人特性都归因于此。以双酚a型环氧树脂为基础,以氧化铝和氧化镁为纳米填料,构建纳米复合材料模型。所选择的填充材料是球形或准球形,以尽量减少其他参数的影响,如纵横比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of the permittivity of epoxy nanocomposites
Polymer nanocomposites exhibit a number of desirable dielectric properties, like increased resistance to partial discharge, electrical treeing, dc breakdown strength, or a decreased intake of space charges. The permittivity is one of the properties at which a direct impact from the introduction of nanoparticles can be observed. Many applications would benefit from the ability to tailor the permittivity of their insulation. Both a reduction, for e.g. cable systems and GIS spacers, and an increase, for e.g. capacitors, would be desirable if they can be controlled and exploited accordingly. Hence there is an interest in predicting how a filler material would alter the permittivity. There are two main groups of theoretical approaches to the problem of composite permittivities. Effective medium theories, which utilize average fields or polarizabilities and induced dipole moments, and integral methods, which use low concentration formulae and integrate them to higher concentration. When modeling the permittivity of nanocomposites both methods struggle to deliver satisfying results. This exploratory work tries to make estimations about the bulk permittivity by taking into account the host-polymer interface, to which many of the astounding properties of polymer nanocomposites are ascribed. As a starting point for the modeling, nanocomposites are considered which are based on bisphenol-A type epoxy resin with aluminum oxide and magnesium oxide nanofiller. The selected filler materials are spherical or quasi-spherical, to minimize the influence of additional parameters like the aspect ratio.
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