DocumentCode :
429213
Title :
Numerical evaluation of E-fields induced by body motion near high-field MRI scanner
Author :
Crozier, S. ; Liu, F.
Author_Institution :
Sch. of Inf. Technol. & Electr. Eng., Queensland Univ., Brisbane, Qld., Australia
Volume :
1
fYear :
2004
fDate :
1-5 Sept. 2004
Firstpage :
1120
Lastpage :
1123
Abstract :
In modern magnetic resonance imaging (MRI), both patients and radiologists are exposed to strong, nonuniform static magnetic fields inside or outside of the scanner, in which the body movement may be able to induce electric currents in tissues which could be possibly harmful. This paper presents theoretical investigations into the spatial distribution of induced E-fields in the human model when moving at various positions around the magnet. The numerical calculations are based on an efficient, quasistatic, finite-difference scheme and an anatomically realistic, full-body, male model. 3D field profiles from an actively-shielded 4 T magnet system are used and the body model projected through the field profile with normalized velocity. The simulation shows that it is possible to induce E-fields/currents near the level of physiological significance under some circumstances and provides insight into the spatial characteristics of the induced fields. The results are easy to extrapolate to very high field strengths for the safety evaluation at a variety of field strengths and motion velocities.
Keywords :
biological effects of fields; biological tissues; biomechanics; biomedical MRI; finite difference methods; image scanners; physiological models; 3D field profile; 4 T; E-field numerical evaluation; MRI scanner; biological tissue; body motion; body movement; electric current induction; finite-difference scheme; human model; magnetic resonance imaging; static magnetic field; Biological system modeling; Coils; Electromagnetic fields; Finite difference methods; Humans; Magnetic fields; Magnetic resonance imaging; Magnetic shielding; Magnetostatics; Safety; MRI; finite difference; high magnetic field; human model; induced current; motion;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society, 2004. IEMBS '04. 26th Annual International Conference of the IEEE
Conference_Location :
San Francisco, CA
Print_ISBN :
0-7803-8439-3
Type :
conf
DOI :
10.1109/IEMBS.2004.1403361
Filename :
1403361
Link To Document :
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