Simulation, design, and test of an elliptical surface coil for magnetic resonance imaging and spectroscopy

被引:7
|
作者
Giovannetti, Giulio [1 ,2 ]
Flori, Alessandra [2 ]
De Marchi, Daniele [2 ,3 ]
Matarazzo, Giuseppe
Frijia, Francesca [2 ]
Burchielli, Silvia [2 ]
Montanaro, Domenico [2 ]
Aquaro, Giovanni Donato [2 ]
Menichetti, Luca [1 ,2 ]
机构
[1] CNR, Natl Res Council, Inst Clin Physiol, Pisa, Italy
[2] Fdn CNR Reg Toscana G Monasterio, Pisa, Italy
[3] AITIRM, Florence, Italy
关键词
coil simulation; inductance; magnetic field; resistance; signal-to-noise ratio; TO-NOISE RATIO; RADIOFREQUENCY COIL;
D O I
10.1002/cmr.b.21361
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The simplest design of surface coils for magnetic resonance imaging (MRI) applications is circular and square loops, both producing a magnetic field perpendicular to the coil plane in the central region-of-interest (ROI), with an amplitude that decreases along the coil axis. However, a surface coil constituted by a loop with different geometry could be necessary when particular field-of-views (FOVs) are desired, especially for performing imaging in an elongated region. This can be achieved by using an elliptical loop, which can guarantee a wide longitudinal FOV and a good penetration in deep sample regions. This work proposes the application of a method for elliptical coil Signal-to-Noise Ratio (SNR) estimation previously developed for circular and square loop design, in which coil inductance and resistance are analytically calculated and the magnetic field pattern is estimated using the magnetostatic approach, while the sample-induced resistance is calculated with the vector potential calculation method. In the second part of the paper, we propose the simulation and the design of a transmit/receive elliptical coil for MRI in mice with a 3T clinical scanner. We also evaluated the coil performance in a preliminary magnetic resonance spectroscopy (MRS) study in phantom.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Ellipsoidal coil for magnetic resonance spectroscopy
    Hernandez, R
    Rodriguez, AO
    Salgado, P
    Barrios, FA
    MEDICAL PHYSICS, 2003, 682 : 205 - 210
  • [22] CORRECTION FOR INTENSITY FALLOFF IN SURFACE COIL MAGNETIC-RESONANCE IMAGING
    BREY, WW
    NARAYANA, PA
    MEDICAL PHYSICS, 1988, 15 (02) : 241 - 245
  • [23] MAGNETIC-RESONANCE IMAGING OF THE ORBITS USING A BINOCULAR SURFACE COIL
    DEANS, HE
    REDPATH, TW
    SMITH, FW
    PAREKH, S
    FORRESTER, JV
    BRITISH JOURNAL OF RADIOLOGY, 1988, 61 (728): : 665 - 672
  • [24] Surface Head Coil for 10.5 Tesla Magnetic Resonance Imaging (MRI)
    Motovilova, Elizaveta
    Huang, Shao Ying
    Su, Jiasheng
    2015 IEEE MTT-S INTERNATIONAL MICROWAVE WORKSHOP SERIES ON ADVANCED MATERIALS AND PROCESSES FOR RF AND THZ APPLICATIONS (IMWS-AMP), 2015, : 86 - 88
  • [25] Magnetic resonance imaging of cervical carcinoma using an endorectal surface coil
    Brocker, Kerstin A.
    Alt, Celine D.
    Gebauer, Gerhard
    Sohn, Christof
    Hallscheidt, Peter
    EUROPEAN JOURNAL OF RADIOLOGY, 2014, 83 (07) : 1030 - 1035
  • [26] Surface coil intensity correction in magnetic resonance imaging in spinal metastases
    Ren, Hong
    Lin, Wei
    Ding, Xianjun
    OPEN MEDICINE, 2017, 12 (01): : 138 - 143
  • [27] COMPENSATION FOR SURFACE COIL SENSITIVITY VARIATION IN MAGNETIC-RESONANCE IMAGING
    NARAYANA, PA
    BREY, WW
    KULKARNI, MV
    SIEVENPIPER, CL
    MAGNETIC RESONANCE IMAGING, 1988, 6 (03) : 271 - 274
  • [28] Design and implementation of a uniplanar gradient field coil for magnetic resonance imaging
    Lemdiasov, R
    Ludwig, R
    Brevard, M
    Ferris, C
    CONCEPTS IN MAGNETIC RESONANCE PART B-MAGNETIC RESONANCE ENGINEERING, 2004, 20B (01) : 17 - 29
  • [29] Design and implementation of uniplanar gradient field coil for magnetic resonance imaging
    Lemdiasov, RA
    Ludwig, R
    IEEE TRANSACTIONS ON MAGNETICS, 2004, 40 (04) : 1939 - 1943
  • [30] A cylindrical basis set for shim coil design in magnetic resonance imaging
    Phair, Andrew
    Brideson, Michael
    Forbes, Lawrence K.
    CONCEPTS IN MAGNETIC RESONANCE PART B-MAGNETIC RESONANCE ENGINEERING, 2018, 48B (03)