Title :
Induced Current Calculation in Detailed 3-D Adult and Child Model for the Wireless Power Transfer Frequency Range
Author :
Hye-Jin Song ; Hansu Shin ; Hyang-beom Lee ; Jae-Hun Yoon ; Jin-Kyu Byun
Author_Institution :
Dept. of Electr. Eng., Soongsil Univ., Seoul, South Korea
Abstract :
Induced current density in the human body is the basic restriction of the electromagnetic field protection guidelines for frequencies . Due to the difficulty of measurement, numerical methods are often used for assessment of basic restrictions. In this paper, induced current distributions are calculated in the high-resolution 3-D adult and child models exposed to magnetic fields between 100 kHz and 10 MHz, which is the frequency range of the resonant wireless power transfer (WPT) systems. For this frequency range, it is difficult to apply the conventional finite-difference time-domain (FDTD) method for bioelectric field computation. Thus, the quasi-static FDTD method is used to reduce the number of time steps. The results are analyzed according to different human models, grounding conditions, organs, frequencies, and orientations of the incident magnetic field. In addition, the plane wave exposure is compared with exposure to magnetic field of transmit coil of WPT system. Using the calculation results, the feasibility of the magnetic field reference level in the International Commission on Non-Ionizing Radiation Protection guideline is analyzed.
Keywords :
bioelectric phenomena; biological organs; coils; current density; current distribution; earthing; finite difference time-domain analysis; geriatrics; inductive power transmission; magnetic fields; paediatrics; radiation protection; FDTD method; International Commission on NonIonizing Radiation Protection; WPT frequency range; bioelectric field computation; bioelectric phenomena; electromagnetic field protection; finite-difference time-domain method; high-resolution 3D adult model; high-resolution child model; induced current density; induced current distribution; magnetic field; numerical method; plane wave exposure; quasi-static FDTD method; resonant wireless power transfer system; Biological system modeling; Coils; Finite difference methods; Guidelines; Magnetic domains; Magnetic resonance; Magnetic resonance imaging; Bioelectric phenomena; dosimetry; finite difference methods; wireless power transfer (WPT);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2282364