Analysis of Extremely-Low Frequency Magnetic Field Shielding Effect Using a Cylindrical Shielding Model

被引:0
作者
Lee M.B. [1 ]
Ju S.H. [1 ]
Song K.H. [2 ]
机构
[1] Dept. of Advanced Materials Science and Engineering, Daejin University
关键词
Conductivity; Extremely low frequency; Magnetic field shielding; Magnetic permeability; Shielding rate;
D O I
10.5370/KIEE.2024.73.2.327
中图分类号
学科分类号
摘要
To shield magnetic fields in the extremely low frequency(60Hz) band generated from transmission lines and power equipment, the magnetic field shielding effect was analyzed using Faraday 3D. The analysis model was in the form of a cylindrical shielding material surrounding a wire carrying a single-phase current. The shielding material had a single-layer structure of a high-permeability magnetic layer or a highly conductive metal layer, or a multilayer structure consisting of a magnetic layer/conductive metal layer. The analysis was performed by changing physical properties such as relative magnetic permeability, electrical conductivity and the layer thickness. In the case of single-layer shielding, it was difficult to obtain high enough shielding rate with thickness less than 1mm. In the case of double-layer shielding, however, high shielding rate of 85.3% was achieved when the magnetic permeability of the primary layer was 100 and the conductivity of the secondary layer was 1.0×105(S/m) at 0.2mm thickness of each layer. In multilayer structures consisting of three or more layers, the shielding effect was saturated. © 2024 Korean Institute of Electrical Engineers. All rights reserved.
引用
收藏
页码:327 / 333
页数:6
相关论文
共 7 条
  • [1] Olsen R. G., Deno D., Baishiki R. S., Abbot J. R., Conti R., Frazier M., Jaffa K., Niles G. B., Stewart J. R., Wong R., Magnetic fields from electric power lines: theory and comparison to measurement, IEEE Trans on Power Delivery, 3, 4, pp. 2127-2136, (1988)
  • [2] Hayashi N., Isaka K., Yokoi Y., Examination of simple analytical method for calculating 60 Hz magnetic field in power substations, IEEJ Transactions on Power and Energy, 111-B, 1, pp. 108-116, (1991)
  • [3] Kaune W. T., Zaffanella L. E., Analysis of magnetic fields produced far from electric power lines, IEEE Transactions on Power Delivery, 7, 4, pp. 2082-2091, (1992)
  • [4] Du Y., Cheng T. C., Farag A. S., Principles of power-frequency magnetic field shielding with flat sheets in a source of long conductors, IEEE Transactions on Electromagnetic Compatibility, 38, 3, pp. 450-459, (1996)
  • [5] Olsen R. G., Moreno P., Some observations about shielding extremely low-frequency magnetic fields by finite width shields, IEEE Transactions on Electromagnetic Compatibility, 38, 3, pp. 460-468, (1996)
  • [6] Yamazaki K., Iwamoto T., Kawamoto T., Fujinami H., Investigation of shielding method of ELF magnetic field generated from conductors, Electrical Engineering in Japan, 131, 2, pp. 635-641, (2000)
  • [7] Min S.-W., Song K.-H., Myung S.-H., Investigation of shielding effects of high conductivity or high permeability materials on 60Hz ELF magnetic fields, Transactions on KIEE, 54C, 4, pp. 166-171, (2005)