聚合物纳米复合材料的建模:介电常数与电场强度

K. Y. Lau, N. A. Muhamad, N. Bashir, Y. Arief, M. Piah, A. Vaughan, G. Chen
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引用次数: 6

摘要

聚合物纳米复合材料——一种由纳米尺寸的填料(纳米填料)均匀分散在聚合物中的材料体系——的使用被预测能够在不影响热、机械和经济要求的情况下提高电绝缘系统的性能。这被认为与填料的尺寸小得多有关,这随后导致了广泛的间相的存在-纳米填料和聚合物之间的相互作用区。然而,对纳米复合材料中界面概念的理解并不令人满意,因此,许多实验结果仍然无法解释。本文试图建立一个聚合物纳米复合材料系统的模型,特别是纳米粒子及其界面相的介电常数对所得到的纳米复合材料内电场分布的影响。结果表明,改变纳米颗粒和界面相的介电常数会导致纳米复合材料内电场强度的增加或减少。这将有助于阐明纳米颗粒及其界面相对纳米复合材料内部电场分布的影响,并确定纳米填料/聚合物在不同介质应用中的适当组合。
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Modeling of polymer nanocomposites: Permittivity vs. electric field intensity
The use of polymer nanocomposites - a material system composed of nanometer-sized fillers (nanofillers) homogeneously dispersed in polymers - is predicted to be capable of enhancing the performance of electrical insulation systems without compromising the thermal, mechanical and economic requirements. This is believed to be related to the much smaller size of the fillers, which subsequently leads to the presence of an extensive interphase - an interaction zone between the nanofiller and the polymer. Nevertheless, understanding of the concept of interphase within nanocomposites is unsatisfactory and, consequently, many experimental results remain unexplained. This paper attempts to model a polymer nanocomposite system, in particular, in relation to the effects of permittivity of a nanometer-sized particle and its interphase on the electric field distribution within the resulting nanocomposites. Results show that varying the permittivity of the nanoparticle and the interphase will result in increased or reduced electric field intensity within the nanocomposites. This will help to clarify the effects of the nanometre-sized particle and its interphase on the electric field distribution within nanocomposites, and determine appropriate combinations of nanofiller/polymer for different dielectric applications.
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