欢迎登录材料期刊网

材料期刊网

高级检索

利用熔融共混法制得不同纳米 SiC质量分数(0.5%、2.0%、3.0%)的纳米 SiC/低密度聚乙烯(LDPE)复合材料,研究了添加纳米 SiC颗粒对 LDPE介电性能的影响。利用 SEM观测了纳米 SiC 颗粒的分散特性,利用电声脉冲(PEA)法测得40 kV/mm场强作用下纳米 SiC/LDPE 复合材料的空间电荷分布特性。利用热刺激电流(TSC)进一步验证纳米 SiC添加能够提高 LDPE的陷阱浓度。结果表明:纳米 SiC 颗粒能够均匀地分散在 LDPE中,未出现较大的团聚现象。纳米 SiC质量分数为0.5%、2.0%和3.0%的纳米 SiC/LDPE 复合材料空间电荷注入量明显低于 LDPE。短路600 s后的残留空间电荷密度远小于 LDPE。纳米 SiC/LDPE复合材料的空间电荷注入量与电导率均随着纳米 SiC的增加而减少。纳米 SiC质量分数为3.0%的纳米 SiC/LDPE复合材料场强非线性系数为2.6,远小于 LDPE的4.3。TSC曲线表明纳米 SiC/LDPE复合材料内部制造了大量的陷阱,抑制了载流子在材料内部的输运,从而阻碍了空间电荷的迁移和积聚。

Nano-SiC/low density polyethylene (LDPE)composites with different nano SiC mass fractions (0.5%, 2.0%,3.0%)were prepared by melt blending method.Effects of nano-SiC particles on dielectric properties of LDPE were studied.Dispersion character of nano-SiC particles was observed by SEM.Space charge distribution character of nano-SiC/LDPE composites under 40 kV/mm field strength was obtained by using pulse electro-acousitc (PEA)method.Thermal simulated current (TSC)was also employed to further identify that nano-SiC can increase the trap density of LDPE.The results show that nano-SiC particles disperse uniformly in LDPE and there is no lar-ger agglomeration.The quantity of inj ected space charge of nano-SiC/LDPE composites with nano SiC mass fraction of 0.5%,2.0% and 3.0% are much lower than that of LDPE.After short circuit 600 s,the residual space charge density is much smaller than that of LDPE.The quantity of inj ected space charge and conductivity of nano-SiC/LDPE composites both reduce with the increase of nano-SiC particles.The nonlinear coefficient of electric field of nano-SiC/LDPE composites with nano SiC mass fraction of 3.0% is 2.6,which is much smaller than that of LDPE of 4.3.TSC curves show that a large number of traps appear in nano-SiC/LDPE composites,which inhibit the transportation of carriers in material,thus hinder the migration and accumulation of space charge.

参考文献

[1] 杨佳明;王暄;韩宝忠;赵洪;徐明忠.LDPE纳米复合介质的直流电导特性及其对高压直流电缆中电场分布的影响[J].中国电机工程学报,2014(9):1454-1461.
[2] 樊玮;张超;刘天西.石墨烯/聚合物复合材料的研究进展[J].复合材料学报,2013(1):14-21.
[3] Lewis T.J..Nanometric dielectrics[J].IEEE transactions on dielectrics and electrical insulation: A publication of the IEEE Dielectrics and Electrical Insulation Society,19945(5):812-825.
[4] T. J. Lewis.Interfaces are the Dominant Feature of Dielectrics at the Nanometric Level[J].IEEE transactions on dielectrics and electrical insulation: A publication of the IEEE Dielectrics and Electrical Insulation Society,20045(5):739-753.
[5] Toshikatsu Tanaka;Masahiro Kozako;Norikazu Fuse;Yoshimichi Ohki.Proposal of a Multi-core Model for Polymer Nanocomposite Dielectrics[J].IEEE transactions on dielectrics and electrical insulation: A publication of the IEEE Dielectrics and Electrical Insulation Society,20054(4):669-681.
[6] M. Roy;J. K. Nelson;R. K. MacCrone;L. S. Schadler;C. W. Reed;R. Keefe;W. Zenger.Polymer Nanocomposite Dielectrics - The Role of the Interface[J].IEEE transactions on dielectrics and electrical insulation: A publication of the IEEE Dielectrics and Electrical Insulation Society,20054(4):629-643.
[7] Roy M;Nelson JK;MacCrone RK;Schadler LS.Candidate mechanisms controlling the electrical characteristics of silica/XLPE nanodielectrics[J].Journal of Materials Science,200711(11):3789-3799.
[8] T. Tanaka;G. C. Montanari;R. Mulhaupt.Polymer Nanocomposites as Dielectrics and Electrical Insulation-perspectives for Processing Technologies, Material Characterization and Future Applications[J].IEEE transactions on dielectrics and electrical insulation: A publication of the IEEE Dielectrics and Electrical Insulation Society,20045(5):763-784.
[9] 周湶;伍科;廖瑞金;李剑;徐智;马小敏.纳米碳化硅/低密度聚乙烯复合材料的空间电荷分布特性[J].高电压技术,2012(10):2669-2674.
[10] 韩宝忠;郭文敏;李忠华.碳化硅/低密度聚乙烯复合材料的直流伏安特性[J].复合材料学报,2008(5):19-24.
[11] 朱智恩;张冶文;安振连;郑飞虎.用光刺激放电法研究纳米粉末掺杂低密度聚乙烯中陷阱能级[J].物理学报,2012(6):439-445.
[12] 程羽佳;郭宁;王若石;张晓虹.纳米ZnO和纳米MMT对低密度聚乙烯介电性能的影响[J].复合材料学报,2015(1):94-100.
[13] 吴建东;尹毅;兰莉;王俏华;李旭光;肖登明.纳米填充浓度对LDPE/Silica纳米复合介质中空间电荷行为的影响[J].中国电机工程学报,2012(28):177-183.
[14] 屠德民;王霞;吕泽鹏;吴锴;彭宗仁.以能带理论诠释直流聚乙烯绝缘中空间电荷的形成和抑制机理[J].物理学报,2012(1):409-415.
[15] 赵洪;徐明忠;杨佳明;张文龙;王暄;雷清泉.MgO/LDPE纳米复合材料抑制空间电荷及电树枝化特性[J].中国电机工程学报,2012(16):196-202.
[16] 王霞;成霞;陈少卿;郑晓泉;屠德民.纳米ZnO/低密度聚乙烯复合材料的介电特性[J].中国电机工程学报,2008(19):13-19.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%