电工技术学报
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电气绝缘用非线性电导材料研究进展
孟兆通, 张天栋, 张昌海, 迟庆国
哈尔滨理工大学电气与电子工程学院 哈尔滨 150080
Research Progress of Nonlinear Conductive Materials for Electrical Insulation
Meng Zhaotong, Zhang Tiandong, Zhang Changhai, Chi Qingguo
School of Electrical and Electronic Engineering Harbin University of Science and Technology Harbin 150080 China
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摘要 具有非线性电导特性的聚合物材料被广泛应用于解决电场集中问题,例如用来实现电缆附件绝缘、高压旋转电机定子系统绝缘及大功率绝缘栅双极晶体管等部件的电应力控制。该文从几何应力控制及非线性应力控制两方面介绍了电气器件应用中均化电场的方式,详细介绍了氧化锌与碳化硅等无机导电颗粒的非线性电导特性及其聚合物基复合材料的非线性电导形成机制。基于渗流理论及界面传导等理论阐述了掺杂填料含量对非线性电导特性的影响规律,以掺杂填料接触电阻大小、接触界面数目、晶界数量等方面为切入点,总结了填料形貌、尺寸对非线性电导复合材料载流子传输的影响机制。介绍了多维度填料共掺及填料表面改性在非线性电导材料领域的应用及性能调控机制,并且概括了非线性电导材料在高压应用中调控电场的研究成果。文中也指出改性复合材料往往具有复杂的结构,在很多情况下有应用限制,且载流子的传输机制尚未统一,仍需进行更深入的研究。
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关键词 非线性电导均化电场无机填料聚合物绝缘    
Abstract:The electric field control of insulating devices for high-voltage systems has been widely concerned, and engineering efforts are devoted to achieving the lowest possible electric field strength at a fixed system voltage, and to achieve as uniform electric field distribution as possible. Polymer materials with nonlinear conductance properties are widely used to solve the problem of electric field concentration, for example, to achieve electrical stress control of components such as cable accessory insulation, high-voltage rotating electrical machine stator system insulation, and high-power insulated gate bipolar transistors.
In this paper, the method of homogenizing electric field in the application of electrical devices is introduced from two aspects of geometric stress control and nonlinear stress control. The nonlinear conductivity characteristics of inorganic fillers such as zinc oxide and silicon carbide and the formation mechanism of nonlinear conductivity of polymer matrix composites are introduced in detail. Based on the theory of percolation and interfacial conduction, the effect of doped filler content on nonlinear electrical conductivity was expounded. Taking the contact resistance of doped fillers, the number of contact interfaces, and the number of grain boundaries as the starting point, the influence mechanism of filler morphology and size on the carrier transport of nonlinear conductive composites was summarized. The application and performance control mechanism of multi-dimensional filler co-mixing and filler surface modification in the field of nonlinear conductivity materials are introduced, and the research results of nonlinear conductivity materials in high-pressure applications are summarized. It is also pointed out that the modified composite materials have complex structures and limited application in many cases, and the carrier transport mechanism has not been unified yet, so further research is still needed.
The main conclusion of this paper is that the filler content in the composite has a certain impact on the formation of the nonlinear conductive seepage path, the injection of carriers and the interface effect between the filler and the matrix, thus affecting the difficulty of forming the nonlinear conductive characteristics of the composite. The influence of filler morphology mainly depends on the contact resistance between fillers. Filler size mainly affects the probability of carrier conduction path formation and is also related to interface resistance. The influence of grain size can affect the contact voltage through the number of filler contact interfaces. The filler co doping mainly regulates the difficulty of forming the conductive network structure, and the introduction of metal elements can dramatically increase the number of carriers. The surface of fillers can improve the dispersion of fillers in the matrix, thus enhancing the interaction between polymers and fillers. However, there is still no unified understanding of the influence of filler dispersion on the nonlinear electrical characteristics of composites. Nonlinear conductive materials can effectively control the electric field distribution of IGBT, GIS, cable accessories and other components, and provide guarantee for the safe operation of electrical insulation devices. It is pointed out that a lot of research is needed to broaden the range of preparation methods that can be used to synthesize nonlinear conductive composites, and improve the tensile strength and toughness of the materials. Surface modification of fillers is another relatively new research field. It can achieve uniform dispersion of high content nano fillers in polymer matrix, which is a direction that can be further studied. Polymer grafting is also an area of future research. In short, the excellent characteristics and high efficiency of emerging methods will promote the upgrading of domestic related technologies and industrial development.
Key wordsNonlinear conductance    homogeneous electric field    inorganic filler    polymer insulation   
收稿日期: 2022-07-22     
PACS: TM215  
基金资助:国家自然科学基金项目(51977050)和黑龙江省自然科学基金项目(ZD2020E009)资助
通讯作者: 迟庆国 男,1981年生,博士,教授,博士生导师,研究方向为纳米绝缘电介质的界面设计及性能优化。E-mail:qgchi@163.com   
作者简介: 孟兆通 男,1995年生,博士,研究方向为电缆附件用绝缘材料开发与应用。E-mail:zhitong296@163.com
引用本文:   
孟兆通, 张天栋, 张昌海, 迟庆国. 电气绝缘用非线性电导材料研究进展[J]. 电工技术学报, 0, (): 55-55. Meng Zhaotong, Zhang Tiandong, Zhang Changhai, Chi Qingguo. Research Progress of Nonlinear Conductive Materials for Electrical Insulation. Transactions of China Electrotechnical Society, 0, (): 55-55.
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https://dgjsxb.ces-transaction.com/CN/10.19595/j.cnki.1000-6753.tces.221415          https://dgjsxb.ces-transaction.com/CN/Y0/V/I/55