Simulation of Low-Frequency Magnetic Fields in Automotive EMC Problems

被引:26
|
作者
Jobava, Roman G. [1 ]
Gheonjian, Anna L. [1 ]
Hippeli, Johannes [2 ]
Chiqovani, Giorgi [1 ]
Karkashadze, David D. [1 ]
Bogdanov, Faik G. [1 ]
Khvitia, Badri [1 ]
Bzhalava, Anna G. [1 ]
机构
[1] EMCoS Ltd, GE-0160 Tbilisi, Georgia
[2] TU Dortmund, Fac Elect Engn & Informat Technol, D-44221 North Rhine Westphalia, Germany
关键词
Impedance sheets; magnetic fields; magnetic shielding; method of moments; PREDICTING SHIELDING EFFECTIVENESS; EDDY-CURRENT COMPUTATION; SCATTERING; CURRENTS; FORMULATION; RADIATION; EQUATIONS; BOUNDARY;
D O I
10.1109/TEMC.2014.2325134
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
This paper presents a computationally efficient method for solving automotive low-frequency electromagnetic compatibility (EMC) problems by using integral equations. We consider the interaction of magnetic fields with thin, finite, conducting 3-D metallic structures, obtaining the fields radiated by these structures by using single-and double-layer equivalent currents. Our proposed numerical solution is unique in its representation of equivalent currents as the sum of solenoidal and nonsolenoidal components found using the method of moments (MoM) in two steps: first, the solenoidal currents are found using loop basis functions, after which the nonsolenoidal currents are found. Decomposing the equivalent currents into solenoidal and nonsolenoidal components provides a total solution that is computationally efficient for problems dominated by magnetic fields. We validated this numerical electromagnetic solution against semianalytical solutions and measured data and illustrated its applicability by analyzing three practical automotive problems. We then analyzed the magnetic fields generated by a power cable inside a car, suggested a methodology for optimizing the locations of antennas for smart-entry systems, and studied the EMC implications of an inductive-charging system in an electric vehicle.
引用
收藏
页码:1420 / 1430
页数:11
相关论文
共 50 条
  • [21] TREATMENT OF OSTEOPOROSIS WITH LOW-FREQUENCY PULSATING MAGNETIC-FIELDS
    JACCHIA, GE
    INNOCENTI, M
    CALABRESE, C
    BIOELECTROCHEMISTRY AND BIOENERGETICS, 1985, 14 (1-3): : 169 - 174
  • [22] Interaction of low-frequency electric and magnetic fields with the human body
    Stuchly, MA
    Dawson, TW
    PROCEEDINGS OF THE IEEE, 2000, 88 (05) : 643 - 664
  • [24] Effects of extremely low-frequency magnetic fields on neuron activity
    Jiang Xiu-Yu
    Wang Jiang
    Yi Guo-Sheng
    Deng Bin
    Wei Xi-Le
    Han Chun-Xiao
    PROCEEDINGS OF THE 31ST CHINESE CONTROL CONFERENCE, 2012, : 7355 - 7359
  • [25] Methods of measuring the low-frequency electric and magnetic fields of ships
    Zolotarevskii, YM
    Bulygin, FV
    Ponomarev, AN
    Narchev, VA
    Berezina, LV
    MEASUREMENT TECHNIQUES, 2005, 48 (11) : 1140 - 1144
  • [26] STATIONARY ELECTROLYTE FLOW IN LOW-FREQUENCY MAGNETIC-FIELDS
    GAK, EZ
    KOMAROV, GP
    SOVIET PHYSICS TECHNICAL PHYSICS-USSR, 1972, 16 (09): : 1578 - &
  • [27] Extremely low-frequency magnetic fields and fertility in welders - Reply
    Jensen, Tina Kold
    Joffe, Mike
    Bonde, J. P.
    OCCUPATIONAL MEDICINE-OXFORD, 2007, 57 (03): : 225 - 226
  • [28] A novel photonic magnetometer for detection of low-frequency magnetic fields
    Matthews, John
    Bukshpun, Leonid
    Pradhan, Ranjit
    PHOTONIC FIBER AND CRYSTAL DEVICES: ADVANCES IN MATERIALS AND INNOVATIONS IN DEVICE APPLICATIONS V, 2011, 8120
  • [29] DIATOM RESPONSE TO EXTREMELY LOW-FREQUENCY MAGNETIC-FIELDS
    PARKINSON, WC
    SULIK, GL
    RADIATION RESEARCH, 1992, 130 (03) : 319 - 330
  • [30] EXTREMELY LOW-FREQUENCY ELECTRIC AND MAGNETIC-FIELDS AND CANCER
    POOLE, C
    TRICHOPOULOS, D
    CANCER CAUSES & CONTROL, 1991, 2 (04) : 267 - 276