DocumentCode
1138016
Title
An inverse methodology for high-frequency RF coil design for MRI with de-emphasized B/sub 1/ fields
Author
Xu, Bin ; Wei, Qing ; Liu, Feng ; Crozier, Stuart
Author_Institution
Sch. of Inf. Technol. & Electr. Eng., Univ. of Queensland, Brisbane, Qld., Australia
Volume
52
Issue
9
fYear
2005
Firstpage
1582
Lastpage
1587
Abstract
An inverse methodology for the design of biologically loaded radio-frequency (RF) coils for magnetic resonance imaging applications is described. Free space time-harmonic electromagnetic Green´s functions and de-emphasized B 1 target fields are used to calculate the current density on the coil cylinder. In theory, with the B 1 field de-emphasized in the middle of the RF transverse plane, the calculated current distribution can generate an internal magnetic field that can reduce the central overemphasis effect caused by field/tissue interactions at high frequencies. The current distribution of a head coil operating at 4 T (170 MHz) is calculated using an inverse methodology with de-emphasized B 1 target fields. An in-house finite-difference time-domain routine is employed to evaluate B 1 field and signal intensity inside a homogenous cylindrical phantom and then a complete human head model. A comparison with a conventional RF birdcage coil is carried out and demonstrates that this method can help in decreasing the normal bright region caused by field/tissue interactions in head images at 170 MHz and higher field strengths.
Keywords
Green´s function methods; biological tissues; biomagnetism; biomedical MRI; coils; finite difference time-domain analysis; phantoms; 170 MHz; 4 T; RF birdcage coil; complete human head model; de-emphasized radio-frequency fields; field/tissue interactions; free space time-harmonic electromagnetic Green functions; high-frequency radio-frequency coil design; homogenous cylindrical phantom; in-house finite-difference time-domain routine; internal magnetic field; inverse methodology; magnetic resonance imaging; Coils; Current density; Current distribution; Design methodology; Electromagnetic fields; Finite difference methods; Green´s function methods; Magnetic heads; Magnetic resonance imaging; Radio frequency; FDTD; Green´s function; MRI; RF coil; human model; inverse methodology; pre-emphasis; Brain; Computer-Aided Design; Electromagnetics; Equipment Design; Equipment Failure Analysis; Feasibility Studies; Humans; Magnetic Resonance Imaging; Models, Biological; Radio Waves; Transducers;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2005.851514
Filename
1495702
Link To Document