A Study on Electric Potential and Electric Field Distribution for Optimal Design of Lightning Rod Using Finite Element Method

被引:0
|
作者
Jang, Kyung-Hoon [1 ]
Seo, Sang-Won [2 ]
Kim, Dong-Jin [2 ]
机构
[1] Korea Conform Labs, Components & Mat Div Dept, Seoul 08503, South Korea
[2] SUNKWANG LTI, Res & Dev, Seoul 06230, South Korea
关键词
lightning rod protection; charge transfer system (CTS); electric field analysis; numerical analysis; optimal design; finite element method; corona discharge; air insulation; 65K10;
D O I
10.3390/math11071668
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
In this paper, we present an electric field analysis for the optimal structural design of lightning rods for high performance with a charge transfer system (CTS). In the case of a conventional rod that is produced with an empirical design and structure without quantitative data because the design is structurally very simple, only the materials and radius of curvature of the lightning rod to concentrate the electric field at the tip part of the rod are considered. Recently, the development of new types of lightning rods, such as early streamer emission (ESE) and charge transfer system (CTS), has been introduced through simulation analysis and experiments, but detailed specifications and information about the optimal design and structure have not been fully reported. In this paper, we performed an electric field analysis of the structures and materials for the optimal structural design of lightning rods with a function of CTS through computer software analysis with consideration for the radius of curvature, the size of corona ring, and optimal position (X-axis and Y-axis) of the floating electrode. For optimal structural design of lightning rods based on electric field analysis, we used a source of lightning voltage with 1.2/50 mu s based on a double exponential equation. The results revealed that the electric field on the relaxation part decreases as the radius of curvature and corona ring increases. For the radius of curvature, the electric field first decreases and then increases with increasing radius of curvature and reaches a minimum at 7 mm and a maximum above 8 mm. For the case of the corona ring, the electric field decreases with increasing corona ring, and the optimal size of the corona ring was selected as 4 mm; the size of the 4 mm corona ring uniformly formed the electric field both at the tip part of the ground current collector and the corona ring. For the electric field concentration part, we found that the optimal X-axis position of the floating electrode and the Y-axis position between the ionizer conductor and floating electrode are 7 mm and 0.1 mm, respectively. These simulation results in this paper are expected to provide useful information for the design of optimized CTS-type lightning rods.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] A study of electric field distribution in Benjamin type proportional counter using finite element method
    Lin, Ye
    Yuan, Yonggang
    Fang, Fang
    Tan, Zhaoyi
    APPLIED RADIATION AND ISOTOPES, 2018, 135 : 142 - 146
  • [2] Spatial distribution of the electric field in liquid crystal dispersions devices by using a finite-element method
    Pena, JMS
    Rodríguez, I
    Vázquez, C
    Pérez, I
    Otón, JM
    JOURNAL OF MOLECULAR LIQUIDS, 2003, 108 (1-3) : 107 - 117
  • [3] Visualization of the electric field evoked by transcranial electric stimulation during a craniotomy using the finite element method
    Tomio, Ryosuke
    Akiyama, Takenori
    Horikoshi, Tomo
    Ohira, Takayuki
    Yoshida, Kazunari
    JOURNAL OF NEUROSCIENCE METHODS, 2015, 256 : 157 - 167
  • [4] Electric Field Analysis of High Voltage Apparatus Using Finite Element Method
    Zhang, Chao
    Kester, Jeffrey J.
    Daley, Charles W.
    Rigby, Stephen J.
    2010 ANNUAL REPORT CONFERENCE ON ELECTRICAL INSULATION AND DIELECTIC PHENOMENA, 2010,
  • [5] Simulation of the Composite Electric Field on 170 kV Disconnector Using the Finite-Element Method
    Yazici, Mirac
    Kalenderli, Ozcan
    Ispirli, Mehmet Murat
    ELECTRICA, 2024, 24 (01): : 87 - 95
  • [6] Electric Field Analysis of Extra High Voltage (EHV) Underground Cables Using Finite Element Method
    Kumar, Mantosh
    Bhaskar, Mahajan Sagar
    Padmanaban, Sanjeevikumar
    Siano, Pierluigi
    Blaabjerg, Frede
    Leonowicz, Zbigniew
    2017 1ST IEEE INTERNATIONAL CONFERENCE ON ENVIRONMENT AND ELECTRICAL ENGINEERING AND 2017 17TH IEEE INDUSTRIAL AND COMMERCIAL POWER SYSTEMS EUROPE (EEEIC / I&CPS EUROPE), 2017,
  • [7] Determination of the Electric Field on High Voltage Rubber Insulators Using the Finite Element Method
    Beiu, Constantin
    Toader, Cornel
    Golovanov, Nicolae
    Buica, Georgeta
    2016 INTERNATIONAL CONFERENCE ON APPLIED AND THEORETICAL ELECTRICITY (ICATE), 2016,
  • [8] Calculation of the Electric Field in a Heterogeneous Dielectric with a Cellular Structure Using the Finite Element Method
    D. V. Maksudov
    Russian Electrical Engineering, 2024, 95 (12) : 974 - 978
  • [9] Electric Field Distribution Analysis of 110 kV Composite Insulator Using Finite Element Modeling
    Kumar, S. Muthu
    Kalaivani, L.
    2014 IEEE INTERNATIONAL CONFERENCE ON CIRCUIT, POWER AND COMPUTING TECHNOLOGIES (ICCPCT-2014), 2014, : 136 - 141
  • [10] Hybrid Finite element method for reconstructing electric field distribution of dielectric object excited by dipole antenna
    Baharin, Rasyidah Hanan Mohd
    Sakamoto, Kotaro
    Uno, Toru
    Arima, Takuji
    IEICE COMMUNICATIONS EXPRESS, 2021, 10 (09): : 652 - 659