材料科学
随时间变化的栅氧化层击穿
聚乙烯
分子动力学
介电强度
化学物理
阳极
阴极
苯乙酮
快速回复
电介质
复合材料
电压
计算化学
化学
物理化学
有机化学
电气工程
电极
光电子学
静电放电
栅极电介质
催化作用
晶体管
工程类
作者
Dooman Akbarian,Karthik Ganeshan,W. Hunter Woodward,Jonathan Moore,Adri C. T. van Duin
摘要
Cross-linked polyethylene (XLPE) has been recognized as an outstanding insulator for high-voltage power cables due to its favorable structural integrity at high temperature, low moisture sensitivity, chemical resistance, and low rates of failure due to aging. However, the roles of by-products and amorphous regions generated during the XLPE production are not clearly known at the atomistic scale. In this study, we present an eReaxFF-based molecular dynamics simulation framework with an explicit electron description verified against density functional theory data to investigate the roles of XLPE by-products and processing variables such as density and voids on the time to dielectric breakdown (TDDB) of polyethylene (PE). Our simulation results indicate that an increase in density of PE increases the TDDB; however, adding a by-product with positive electron affinity such as acetophenone can reduce the TDDB. Furthermore, during the electrical breakdown in PE, electrons tend to migrate through voids when transferring from the anode to cathode. In comparison with neutral acetophenone, we find that the acetophenone radical anion can significantly reduce the energy barrier and the reaction energy of secondary chemical reactions.
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