聚醚酰亚胺纳米电介质高温储能性能的模拟

IF 2.9 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Poxin Wang;Daomin Min;Xiaofan Song;Yuanshuo Zhang;Lingyu Yang;Shihang Wang;Shengtao Li
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引用次数: 0

摘要

线性聚合物电介质因其高击穿强度和轻量化而成为高能量密度电容器的理想材料,但低储能密度极大地限制了其实际应用。电荷注入和输运与储能性能密切相关。为了明确影响线性聚合物电介质储能性能的关键因素,我们构建了纳米复合电介质的储能和能量释放模型,并模拟了不同温度和不同电场下具有不同跳变距离和跳变势垒的聚醚亚胺纳米复合材料(PEI PNCs)电介质的储能性能。对PEI pnc施加三角形电压,计算出位移-电场(${D}$ - ${E}$)回路,得到储能密度和能量效率。模拟结果的变化趋势与实验结果一致。PEI PNCs中电荷跳势垒和平均跳距的变化会影响载流子迁移率和电流密度,进而影响介质电容器的放电能量密度和能效。较高的跳变势垒和较小的平均跳变距离可以提高介质的储能性能,特别是在高温下。该研究可为纳米复合介质的绝缘设计和性能改进提供理论和模型支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of the Energy Storage Properties of Polyetherimide Nanodielectrics at High Temperatures
Linear polymer dielectrics have become the ideal materials for high-energy-density capacitors because of their high breakdown strength and lightweight, but the low-energy storage density greatly limits their practical application. The charge injection and transport are closely related to the energy storage performance. In order to clarify the key factors affecting the energy storage performance of the linear polymer dielectrics, we constructed an energy storage and energy release model of the nanocomposite dielectrics, and simulate the energy storage performance of the polyetherimide nanocomposite (PEI PNCs) dielectrics with different hopping distances and hopping barriers at different temperatures and different electric fields. Applied a triangular voltage to the PEI PNCs, the electric displacement–electric field ( ${D}$ ${E}$ ) loops are computed, and then, the energy storage densities and the energy efficiencies are obtained. The changing trends of the simulation results are consistent with those of experiments. The changes of charge hopping barrier and average hopping distance in PEI PNCs have an impact on the carrier mobility and current density, and then affect the discharged energy density and energy efficiency of dielectric capacitors. A higher hopping barrier and a smaller average hopping distance can improve the energy storage performance of the dielectrics, especially at high temperatures. This research can provide theoretical and model support for the insulation design and performance improvement of nanocomposite dielectrics.
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来源期刊
IEEE Transactions on Dielectrics and Electrical Insulation
IEEE Transactions on Dielectrics and Electrical Insulation 工程技术-工程:电子与电气
CiteScore
6.00
自引率
22.60%
发文量
309
审稿时长
5.2 months
期刊介绍: Topics that are concerned with dielectric phenomena and measurements, with development and characterization of gaseous, vacuum, liquid and solid electrical insulating materials and systems; and with utilization of these materials in circuits and systems under condition of use.
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