DocumentCode :
8179
Title :
A Novel Method to Decrease Electric Field and SAR Using an External High Dielectric Sleeve at 3 T Head MRI: Numerical and Experimental Results
Author :
Park, Bu S. ; Rajan, Sunder S. ; Guag, Joshua W. ; Angelone, Leonardo M.
Author_Institution :
Center for Devices & Radiol. Health Div. of Phys., Food & Drug Adm., Silver Spring, MD, USA
Volume :
62
Issue :
4
fYear :
2015
fDate :
Apr-15
Firstpage :
1063
Lastpage :
1069
Abstract :
Materials with high dielectric constant (HDC) have been used in high field MRI to decrease specific absorption rate (SAR), increase magnetic field intensity, and increase signal-to-noise ratio. In previous studies, the HDC materials were placed inside the RF coil decreasing the space available. This study describes an alternative approach that considers an HDC-based sleeve placed outside the RF coil. The effects of an HDC on the electromagnetic (EM) field were studied using numerical simulations with a coil unloaded and loaded with a human head model. In addition, experimental EM measurements at 128 MHz were performed inside a custom-made head coil, fitted with a distilled water sleeve. The numerical simulations showed up to 40% decrease in maximum 10 g-avg. SAR on the surface of the head model with an HDC material of barium titanate. Experimental measurements also showed up to 20% decrease of maximum electric field using an HDC material of distilled water. The proposed method can be incorporated in the design of high field transmit RF coils.
Keywords :
barium compounds; biological effects of fields; biomedical MRI; coils; electromagnetic fields; electromagnetic wave absorption; permittivity; BaTiO3; EM field; EM measurement; HDC-based sleeve; RF coil; SAR; barium titanate; custom-made head coil; distilled water sleeve; electric field; electromagnetic field; external high dielectric sleeve; frequency 128 MHz; head MRI; high dielectric constant; human head model; specific absorption rate; Coils; Electric fields; Head; Magnetic heads; Materials; Numerical simulation; Radio frequency; Barium Titanate; Barium titanate; FDTD; SAR; birdcage coil; coil design; distilled water; finite-difference time domain (FDTD); specific absorption rate (SAR);
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2014.2364512
Filename :
6933921
Link To Document :
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