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
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