DocumentCode :
82841
Title :
MRI RF Array Decoupling Method With Magnetic Wall Distributed Filters
Author :
Connell, Ian R. O. ; Gilbert, Kyle M. ; Abou-Khousa, Mohamed A. ; Menon, Ravi S.
Author_Institution :
Centre for Functional & Metabolic Mapping, Robarts Res. Inst., London, ON, Canada
Volume :
34
Issue :
4
fYear :
2015
fDate :
Apr-15
Firstpage :
825
Lastpage :
835
Abstract :
Multi-channel radio-frequency (RF) transmit coil arrays have been developed to mitigate many of the RF challenges associated with ultra-high field ( ≥ 7T) magnetic resonance imaging (MRI). These arrays can be used for parallel RF transmission to produce spatially tailored RF excitation over the field of view. However, the realization of such arrays remains a challenge due to significant reactive interaction between the array coils, i.e., mutual coupling. In this paper, a novel bandstop filter (“magnetic wall”) is used in an MRI RF transmit array to decouple individual coils. The proposed decoupling method is inspired by periodic resonator designs commonly used in frequency selective surfaces and is used as a distributed RF filter to suppress the transmission of RF energy between coils in an array. The decoupling of the magnetic wall (MW) is analyzed in terms of equivalent circuits that include terms for both magnetic and electric coupling for an arbitrary number of MW resonant conductors. Both frequency-and time-domain full-wave simulations were performed to analyze a specific MW structure. The performance of the proposed method is experimentally validated for both first-order coupling and higher-order coupling with a three-coil 7T array setup. Analysis and measurements confirm that the rejection band of the MW can be tuned to provide high isolation in the presence of cross coupling between RF array coils.
Keywords :
biomedical MRI; coils; MRI RF array decoupling method; MW resonant conductors; RF energy transmission; bandstop filter; electric coupling; equivalent circuits; frequency selective surfaces; frequency-domain full-wave simulations; magnetic coupling; magnetic flux density 7 T; magnetic wall distributed filters; multichannel radiofrequency transmit coil arrays; parallel RF transmission; periodic resonator designs; time-domain full-wave simulations; ultrahigh field magnetic resonance imaging; Arrays; Coils; Conductors; Couplings; Magnetic resonance imaging; Magnetic separation; Radio frequency; Decoupling; RF planar filter; frequency selective surface; magnetic resonance imaging (MRI) arrays; magnetic wall; mutual coupling; radio-frequency (RF) coil;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2014.2378695
Filename :
6979238
Link To Document :
بازگشت