Institute of Nuclear Physics, Polish Academy of Sciences, Krakow 31-342, Poland.
Magn Reson Imaging. 2009 Nov;27(9):1302-8. doi: 10.1016/j.mri.2009.05.018. Epub 2009 Jun 25.
Applications of low-field magnetic resonance imaging (MRI) systems (<0.3 T) are limited due to the signal-to-noise ratio (SNR) being lower than that provided by systems based on superconductive magnets (> or = 1.5 T). Therefore, the design of radiofrequency (RF) coils for low-field MRI requires careful consideration as significant gains in SNR can be achieved with the proper design of the RF coil. This article describes an analytical method for the optimization of solenoidal coils. Coil and sample losses are analyzed to provide maximum SNR and optimum B(1) field homogeneity. The calculations are performed for solenoidal coils optimized for the human head at 0.2 T, but the method could also be applied to any solenoidal coil for imaging other anatomical regions at low field. Several coils were constructed to compare experimental and theoretical results. A head magnetic resonance image obtained at 0.2 T with the optimum design is presented.
低磁场磁共振成像(MRI)系统(<0.3T)的应用受到限制,因为其信噪比(SNR)低于基于超导磁铁的系统(>=1.5T)。因此,低场 MRI 的射频(RF)线圈的设计需要仔细考虑,因为通过适当的 RF 线圈设计可以显著提高 SNR。本文描述了一种优化螺线管线圈的分析方法。分析了线圈和样品损耗,以提供最大的 SNR 和最佳的 B(1)场均匀性。这些计算是针对优化后的人体头部 0.2T 螺线管线圈进行的,但该方法也可应用于任何在低场下对其他解剖区域进行成像的螺线管线圈。构建了几个线圈以比较实验和理论结果。展示了在 0.2T 下使用最佳设计获得的头部磁共振图像。