Title :
Variability of SAR in different human models due to wireless power transfer with magnetic resonance
Author :
Hirata, Akihiko ; Tsuchida, Satoshi ; Laakso, Ilkka
Author_Institution :
Dept. of Comput. Sci. & Eng., Nagoya Inst. of Technol., Nagoya, Japan
Abstract :
The present study discusses the specific absorption rate (SAR) due to magnetic fields of a wireless power transfer system in the 10 MHz frequency band. Multigrid method is implemented in the quasi-static electromagnetic analysis of induced electric field in the human body to reduce the computational time to investigate the variability of SAR in different exposure scenarios. The computational time and convergence is also discussed. From our computational results, the computational time was approximately 300 times faster than that with the conventional method. Using our quasi-static approach, the SAR was computed in different anatomically based human models and for different exposure scenarios. The peak SAR values appeared when the human body was located in front of either of the coils, with the height of the coil in front of the chest. The peak SAR values are thought to be affected by variations in the cross-section area of anatomically based models considered.
Keywords :
biological effects of microwaves; dosimetry; inductive power transmission; physiological models; SAR variability; electromagnetic wave exposure scenario; frequency 10 MHz; human body induced electric field; human models; magnetic fields; magnetic resonance; multigrid method; peak SAR values; quasistatic electromagnetic analysis; specific absorption rate; wireless power transfer system; Biological system modeling; Coils; Computational modeling; Magnetic fields; Mathematical model; Multigrid methods; Wireless communication; computational dosimetry; computational time; magneto-quasi-static appraoch; specific absorption rate (SAR); wireless power trasnfer;
Conference_Titel :
Electromagnetic Compatibility (EMC EUROPE), 2013 International Symposium on
Conference_Location :
Brugge