DocumentCode
1354072
Title
Frequency-Offset Cartesian Feedback for MRI Power Amplifier Linearization
Author
Zanchi, Marta G. ; Stang, Pascal ; Kerr, Adam ; Pauly, John M. ; Scott, Greig C.
Author_Institution
LitePoint Corp., CA, USA
Volume
30
Issue
2
fYear
2011
Firstpage
512
Lastpage
522
Abstract
High-quality magnetic resonance imaging (MRI) requires precise control of the transmit radio-frequency (RF) field. In parallel excitation applications such as transmit SENSE, high RF power linearity is essential to cancel aliased excitations. In widely-employed class AB power amplifiers, gain compression, cross-over distortion, memory effects, and thermal drift all distort the RF field modulation and can degrade image quality. Cartesian feedback (CF) linearization can mitigate these effects in MRI, if the quadrature mismatch and dc offset imperfections inherent in the architecture can be minimized. In this paper, we present a modified Cartesian feedback technique called “frequency-offset Cartesian feedback” (FOCF) that significantly reduces these problems. In the FOCF architecture, the feedback control is performed at a low intermediate frequency rather than dc, so that quadrature ghosts and dc errors are shifted outside the control bandwidth. FOCF linearization is demonstrated with a variety of typical MRI pulses. Simulation of the magnetization obtained with the Bloch equation demonstrates that high-fidelity RF reproduction can be obtained even with inexpensive class AB amplifiers. Finally, the enhanced RF fidelity of FOCF over CF is demonstrated with actual images obtained in a 1.5 T MRI system.
Keywords
Bloch line memories; biomedical MRI; biomedical electronics; control systems; frequency shift keying; linearisation techniques; magnetisation; power amplifiers; AB power amplifiers; Bloch equation; MRI power amplifier linearization; RF field modulation; cartesian feedback linearization; cross-over distortion; dc offset imperfections; feedback control; frequency-offset cartesian feedback; gain compression; magnetic flux density 1.5 T; magnetic resonance imaging; magnetization; memory effects; quadrature mismatch; thermal drift; transmit radio-frequency field; Bandwidth; Couplers; Frequency control; Magnetic resonance imaging; Mixers; Power amplifiers; Radio frequency; Cartesian feedback; control systems; linearization; magnetic resonance imaging (MRI); radio-frequency (RF) power amplifiers; Feedback; Fourier Analysis; Image Processing, Computer-Assisted; Magnetic Resonance Imaging; Phantoms, Imaging; Signal Processing, Computer-Assisted;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2010.2087768
Filename
5604697
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