Molecular dynamics simulation of polydimethylsiloxane under different temperature and electric field

Wenting Liu, Yonghao Fang, Yu Fan, Xinzhe Yu, Yueneng Xu, Jun Zhou, Chuyan Zhang, Y. Deng
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Abstract

In UHV transmission projects, with the continuous improvement of operating voltage level, the discharge caused by strong electric field intensifies the aging of composite insulator outer insulation material. The composite insulators will be subjected to higher field strength, and the resulting partial discharge may generate higher temperature. Therefore, the study of silicone rubber aging under the action of strong electric field and high temperature is more important, but it is difficult to accurately evaluate the aging characteristics only by relying on macroscopic characteristics. In this paper, a molecular model of polydimethylsiloxane was established based on molecular dynamics simulation to explore the structural evolution and microscopic characteristic variation of siloxane under the action of temperature and electric field, and to further study the change of mechanical properties of silicone rubber. It is found that temperature is negatively correlated with mechanical properties. There is a positive correlation between electric field strength and mechanical properties. This study provides an analytical method for predicting the macroscopic characteristics of silicone rubber material through the microscopic morphology, and then provides a reference for analyzing the microscopic mechanism of composite insulator aging and material optimization selection.
不同温度和电场条件下聚二甲基硅氧烷的分子动力学模拟
在特高压输电工程中,随着工作电压等级的不断提高,强电场引起的放电加剧了复合绝缘子外绝缘材料的老化。复合绝缘子将承受更高的场强,由此产生的局部放电可能产生更高的温度。因此,研究硅橡胶在强电场和高温作用下的老化更为重要,但仅依靠宏观特性难以准确评价其老化特性。本文基于分子动力学模拟,建立了聚二甲基硅氧烷的分子模型,探索温度和电场作用下硅氧烷的结构演变和微观特征变化,进一步研究硅橡胶力学性能的变化。发现温度与力学性能呈负相关。电场强度与机械性能呈正相关。本研究为通过微观形貌预测硅橡胶材料的宏观特性提供了一种分析方法,进而为分析复合绝缘子老化的微观机理和材料的优化选择提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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