Avoiding eddy-current problems in ultra-low-field MRI with self-shielded polarizing coils

被引:44
作者
Nieminen, Jaakko O. [1 ]
Vesanen, Panu T. [1 ]
Zevenhoven, Koos C. J. [1 ]
Dabek, Juhani [1 ]
Hassel, Juha [2 ]
Luomahaara, Juho [2 ]
Penttila, Jari S. [3 ]
Ilmoniemi, Risto J. [1 ]
机构
[1] Aalto Univ Sch Sci, Dept Biomed Engn & Computat Sci, FI-00076 Aalto, Finland
[2] VTT Tech Res Ctr Finland, FI-02044 Espoo, Finland
[3] Aivon Oy, FI-02150 Espoo, Finland
关键词
Polarizing coil; Ultra-low-field MRI; Eddy currents; Magnetically shielded room; Multipole expansion; QUANTUM INTERFERENCE DEVICE; MAGNETIC-FIELDS; MICROTESLA MRI; SYSTEMS; DESIGN; COMPENSATION; OPTIMIZATION; GRADIENTS; SENSORS; MEG;
D O I
10.1016/j.jmr.2011.06.022
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
In ultra-low-field magnetic resonance imaging (ULF MRI), superconductive sensors are used to detect MRI signals typically in fields on the order of 10-100 mu T. Despite the highly sensitive detectors, it is necessary to prepolarize the sample in a stronger magnetic field on the order of 10-100 mT, which has to be switched off rapidly in a few milliseconds before signal acquisition. In addition, external magnetic interference is commonly reduced by situating the ULF-MRI system inside a magnetically shielded room (MSR). With typical dipolar polarizing coil designs, the stray field induces strong eddy currents in the conductive layers of the MSR. These eddy currents cause significant secondary magnetic fields that may distort the spin dynamics of the sample, exceed the dynamic range of the sensors, and prevent simultaneous magnetoencephalography and MRI acquisitions. In this paper, we describe a method to design self-shielded polarizing coils for ULF MRI. The experimental results show that with a simple self-shielded polarizing coil, the magnetic fields caused by the eddy currents are largely reduced. With the presented shielding technique, ULF-MRI devices can utilize stronger and spatially broader polarizing fields than achievable with unshielded polarizing coils. (C) 2011 Elsevier Inc. All rights reserved.
引用
收藏
页码:154 / 160
页数:7
相关论文
共 36 条
  • [1] SAMPLING THEORY FOR NEUROMAGNETIC DETECTOR ARRAYS
    AHONEN, AI
    HAMALAINEN, MS
    ILMONIEMI, RJ
    KAJOLA, MJ
    KNUUTILA, JET
    SIMOLA, JT
    VILKMAN, VA
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1993, 40 (09) : 859 - 869
  • [2] [Anonymous], 1999, CLASSICAL ELECTRODYN
  • [3] Irreversible relaxation behaviour of a general class of magnetic systems
    Berkov, DV
    Kotitz, R
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 1996, 8 (09) : 1257 - 1266
  • [4] TEMPORAL AND SPATIAL-ANALYSIS OF FIELDS GENERATED BY EDDY CURRENTS IN SUPERCONDUCTING MAGNETS - OPTIMIZATION OF CORRECTIONS AND QUANTITATIVE CHARACTERIZATION OF MAGNET GRADIENT SYSTEMS
    BOESCH, C
    GRUETTER, R
    MARTIN, E
    [J]. MAGNETIC RESONANCE IN MEDICINE, 1991, 20 (02) : 268 - 284
  • [5] MAGNETIC SCALAR POTENTIAL
    BRONZAN, JB
    [J]. AMERICAN JOURNAL OF PHYSICS, 1971, 39 (11) : 1357 - &
  • [6] SQUID systems adapted to record nuclear magnetism in low magnetic fields
    Burghoff, M.
    Hartwig, S.
    Kilian, W.
    Vorwerk, A.
    Trahms, L.
    [J]. IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2007, 17 (02) : 846 - 849
  • [7] SQUID-detected magnetic resonance imaging in microtesla fields
    Clarke, John
    Hatridge, Michael
    Moessle, Michael
    [J]. ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, 2007, 9 : 389 - 413
  • [8] LARGE-VOLUME CONVENTIONAL MAGNETIC SHIELDS
    COHEN, D
    [J]. REVUE DE PHYSIQUE APPLIQUEE, 1970, 5 (01): : 53 - &
  • [9] In vivo localized H-1 spectroscopy of the rat eye at 7T: Preliminary studies
    Crozier, S
    Doddrell, DM
    [J]. MAGNETIC RESONANCE MATERIALS IN PHYSICS BIOLOGY AND MEDICINE, 1995, 3 (3-4): : 137 - 141
  • [10] Making MRI Quieter
    Edelstein, WA
    Hedeen, RA
    Mallozzi, RP
    El-Hamamsy, SA
    Ackermann, RA
    Havens, TJ
    [J]. MAGNETIC RESONANCE IMAGING, 2002, 20 (02) : 155 - 163