Assessment of Low-Frequency Magnetic Fields Emitted by DC Fast Charging Columns

被引:5
|
作者
Trentadue, Germana [1 ]
Pinto, Rosanna [2 ]
Salvetti, Marco [1 ]
Zanni, Marco [1 ]
Pliakostathis, Konstantinos [1 ]
Scholz, Harald [1 ]
Martini, Giorgio [1 ]
机构
[1] European Commiss, JRC, Via E Fermi 2749, I-21027 Ispra, Italy
[2] ENEA Italian Natl Agcy New Technol Energy & Susta, RC Casaccia, Rome, Italy
关键词
DC charging; fast charging; human electromagnetic field exposure; magnetic flux density; e-mobility; EXPOSURE; GASOLINE;
D O I
10.1002/bem.22254
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The expected imminent widespread use of electromobility in transport systems draws attention to the possible effects of human exposure to magnetic fields generated inside electric vehicles and during their recharge. The current trend is to increase the capacity of the battery inside the vehicles to extend the available driving range and to increase the power of recharging columns to reduce the time required for a full recharge. This leads to higher currents and potentially stronger magnetic fields. The Interoperability Center of the Joint Research Center started an experimental activity focused on the assessment of low-frequency magnetic fields emitted by five fast-charging devices available on the market in recharge and standby conditions. The aim of this study was to contribute to the development of a standard measurement procedure for the assessment of magnetic fields emitted by direct current charging columns. The spectrum and amplitudes of the magnetic field, as well as exposure indices according to guidelines for the general public and occupational exposure, were recorded by means of a magnetic field probe analyzer. The worst-case scenario for instantaneous physical direct and indirect effects was identified. Measurements within the frequency range of 25 Hz-2 kHz revealed localized magnetic flux density peaks above 100 mu T at the 50 Hz frequency in three out of five chargers, registered in close proximity during the recharge. Beyond this distance, exposure indices were recorded showing values below 50% of reference levels. Bioelectromagnetics. (c) 2020 Bioelectromagnetics Society
引用
收藏
页码:308 / 317
页数:10
相关论文
共 50 条
  • [31] Effects of low-frequency magnetic fields on bacteria Escherichia coli
    Strasák, L
    Vetterl, V
    Smarda, J
    BIOELECTROCHEMISTRY, 2002, 55 (1-2) : 161 - 164
  • [32] TREATMENT OF OSTEOPOROSIS WITH LOW-FREQUENCY PULSATING MAGNETIC-FIELDS
    JACCHIA, GE
    INNOCENTI, M
    CALABRESE, C
    BIOELECTROCHEMISTRY AND BIOENERGETICS, 1985, 14 (1-3): : 169 - 174
  • [34] 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
  • [35] 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
  • [36] 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
  • [37] STATIONARY ELECTROLYTE FLOW IN LOW-FREQUENCY MAGNETIC-FIELDS
    GAK, EZ
    KOMAROV, GP
    SOVIET PHYSICS TECHNICAL PHYSICS-USSR, 1972, 16 (09): : 1578 - &
  • [38] 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
  • [39] DIATOM RESPONSE TO EXTREMELY LOW-FREQUENCY MAGNETIC-FIELDS
    PARKINSON, WC
    SULIK, GL
    RADIATION RESEARCH, 1992, 130 (03) : 319 - 330
  • [40] 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