Title :
Tailored RF magnetic field distribution along the bore of a 7-Tesla traveling-wave magnetic resonance imaging system
Author :
Yang, Hongming ; Liebig, Thomas ; Rennings, Andreas ; Froehlich, J. ; Erni, Daniel
Author_Institution :
CENIDE-Center for Nanointegration Duisburg-Essen, Univ. of Duisburg-Essen, Duisburg, Germany
Abstract :
This paper provides a highly efficient method for tailoring the RF magnetic field (B1) distribution along the cylindrical bore of a high-field (7T) magnetic resonance imaging (MRI) scanner operating in the advanced traveling-wave scheme. Here the B1 wave field propagates as a circularly polarized TE11 waveguide mode and is excited, molded and dumped by a lengthwise equidistant array of thin quadrature-fed (metamaterial) ring antennas where each of them perfectly conforms to the inner surface of the cylindrical MRI bore. All individual antenna excitations associated to the desired longitudinal field profile are retrieved from an inverse problem that is efficiently solved in a (weighted) least-squares sense. The electromagnetic modeling is carried out with our equivalent-circuit (EC) FDTD simulation platform openEMS, and a convincing showcase involving a narrow illumination window for larynx diagnostics is presented.
Keywords :
biological organs; biomedical MRI; equivalent circuits; finite difference time-domain analysis; inverse problems; least squares approximations; metamaterial antennas; radiofrequency imaging; waveguide antenna arrays; 7-Tesla traveling-wave magnetic resonance imaging system; B1 wave field propagation; MRI scanner; RF magnetic field distribution; circularly polarized TE11 waveguide mode; cylindrical MRI bore; electromagnetic modeling; equivalent-circuit FDTD simulation; high-field magnetic resonance imaging scanner; inverse problem; larynx diagnostics; lengthwise equidistant array; longitudinal field profile; magnetic flux density 7 T; openEMS; thin quadrature-fed metamaterial ring antennas; traveling-wave scheme; weighted least-squares sense; Antennas; Inverse problems; Lighting; Magnetic fields; Magnetic resonance imaging; Radio frequency;
Conference_Titel :
Electromagnetics in Advanced Applications (ICEAA), 2013 International Conference on
Conference_Location :
Torino
Print_ISBN :
978-1-4673-5705-0
DOI :
10.1109/ICEAA.2013.6632281