An inverse method for designing loaded RF coils in MRI


Autoria(s): While, P. T.; Forbes, L. K.; Crozier, S.
Contribuinte(s)

P. Hauptmann

Data(s)

01/01/2006

Resumo

Radio-frequency ( RF) coils are designed such that they induce homogeneous magnetic fields within some region of interest within a magnetic resonance imaging ( MRI) scanner. Loading the scanner with a patient disrupts the homogeneity of these fields and can lead to a considerable degradation of the quality of the acquired image. In this paper, an inverse method is presented for designing RF coils, in which the presence of a load ( patient) within the MRI scanner is accounted for in the model. To approximate the finite length of the coil, a Fourier series expansion is considered for the coil current density and for the induced fields. Regularization is used to solve this ill-conditioned inverse problem for the unknown Fourier coefficients. That is, the error between the induced and homogeneous target fields is minimized along with an additional constraint, chosen in this paper to represent the curvature of the coil windings. Smooth winding patterns are obtained for both unloaded and loaded coils. RF fields with a high level of homogeneity are obtained in the unloaded case and a limit to the level of homogeneity attainable is observed in the loaded case.

Identificador

http://espace.library.uq.edu.au/view/UQ:79538

Idioma(s)

eng

Publicador

Institute of Physics Publishing Ltd

Palavras-Chave #Magnetic Resonance Imaging (mri) #Radio-frequency (rf) Coil #Coil Design #Inverse Method #Loaded Coil #Magnetic Field Homogeneity #Engineering, Multidisciplinary #Instruments & Instrumentation #Target-field Method #Shim Coils #Electromagnetic Scattering #Inhomogeneity #Resonators #Model #C1 #291500 Biomedical Engineering #671402 Medical instrumentation
Tipo

Journal Article