Simulation of electric field distribution around water droplets on outdoor insulator surfaces

被引:6
|
作者
Basappa, Prathap [1 ]
Lakdawala, Vishnu [2 ]
Sarang, Bhargavi [2 ]
Mishra, Ashutosh [1 ]
机构
[1] Norfolk State Univ, Dept Elect Engn, 700 Pk Ave, Norfolk, VA 23504 USA
[2] Old Dominion Univ, Dept Elect & Comp Engn, Norfolk, VA 23529 USA
关键词
D O I
10.1109/ELINSL.2008.4570275
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Overhead insulators used for transmission lines rated 500 W and above, are relatively long, and the voltage distribution along the insulator length generally is non-uniform. Even though contamination of the outdoor insulator due to pollution is one of the prime factors leading to flashover and the resulting transmission line faults, it has been observed that the flashover can occur even before the presence of actual contaminants. In practice, the presence of water droplets over the insulator surface creates locations of high electric field intensity, a region where the electrical breakdown can initiate. The degree of field intensification at the triple point between water, air and insulator is a function of the wettability of the insulator surface, which increases with insulator degradation. In this work, the variation of electric field distribution around a typical water droplet in the sheath and shed regions as a function of the contact angle is reported. Two types of commonly used insulating materials namely hydrophobic silicone rubber (SIR) and porcelain have been investigated in our study.
引用
收藏
页码:50 / +
页数:2
相关论文
共 50 条
  • [31] On the Voltage and Electric Field Distribution along Polymer Insulator
    Izadi, M.
    Abd Rahman, M. S. B.
    Ab Kadir, M. Z. A.
    2014 IEEE 8TH INTERNATIONAL POWER ENGINEERING AND OPTIMIZATION CONFERENCE (PEOCO), 2014, : 265 - 269
  • [32] Electric field and the charge distribution on the surface of an insulator in a vacuum
    Belyaev, VK
    TECHNICAL PHYSICS, 2005, 50 (06) : 673 - 679
  • [33] Simulation of the potential and electric field distribution on high voltage insulator using the finite element method
    Benguesmia H.
    M’Ziou N.
    Boubakeur A.
    Diagnostyka, 2018, 19 (02): : 41 - 52
  • [34] The Influence of Electric Field Distribution on Insulator Surface Flashover
    Liu, Lin
    Li, Xiaoang
    Zhang, Qiaogen
    Liang, Chengjun
    Ren, Haiyang
    Zhao, Junping
    Li, Zhibing
    2018 IEEE CONFERENCE ON ELECTRICAL INSULATION AND DIELECTRIC PHENOMENA (IEEE CEIDP), 2018, : 255 - 258
  • [35] Simulation and Analysis of Coalescence of Water Droplets on Composite Insulating Surface under DC Electric Field
    Ndoumbe, J.
    Beroual, A.
    Imano, A. Moukengue
    IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2015, 22 (05) : 2669 - 2675
  • [36] Deformation of water droplets on solid surface in electric field
    Imano, A. Moukengue
    Beroual, A.
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2006, 298 (02) : 869 - 879
  • [37] Calculation of the Distribution of the Electric Field Around a System of Bodies in an Electric Field.
    Majewski, Adam
    Archiwum ELektrotechniki, 1980, 29 (01): : 267 - 269
  • [38] Partial Discharge Investigation and Electric Field Analysis of Different Oscillation Modes of Water Droplets on the Surface of Polymeric Insulator under Tangential AC Electric Field Stress
    Nazemi, M. H.
    Hinrichsen, V.
    PROCEEDINGS OF THE 2013 IEEE INTERNATIONAL CONFERENCE ON SOLID DIELECTRICS (ICSD 2013), VOLS 1 AND 2, 2013, : 194 - 197
  • [39] Computation of AC and DC electric field around a wet polluted insulator
    Gerdin, G
    Lakdawala, V
    Basappa, P
    2002 ANNUAL REPORT CONFERENCE ON ELECTRICAL INSULATION AND DIELECTRIC PHENOMENA, 2002, : 176 - 179
  • [40] Distribution of electric field and energy flux around the cracks on the surfaces of Nd-doped phosphate glasses
    Zhang, Lei
    Huang, Li
    Fan, Sijun
    Bai, Gongxun
    Li, Kefeng
    Chen, Wei
    Hu, Lili
    APPLIED OPTICS, 2010, 49 (35) : 6668 - 6674