Ibrahim Tamer S, Mitchell Chad, Abraham Roney, Schmalbrock Petra
Department of Radiology, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.
NMR Biomed. 2007 Feb;20(1):58-68. doi: 10.1002/nbm.1094.
In this work, numerical and experimental studies of the transverse electromagnetic (TEM) resonator modes at ultrahigh-field (UHF) MRI are performed using an in-house finite difference time domain package at 340 MHz and using an 8 T whole-body MRI system. The simulations utilized anatomically detailed human head mesh and a spherical head-sized phantom, while the experiments included an electromagnetically equivalent (to simulations) phantom and in vivo human head studies. An in-depth look at the homogeneity of the transmit-and-receive fields and local and global polarization of the electromagnetic waves inside the cavity of the head coil, and also the current distribution obtained on the resonator elements, is provided for several coil modes when the coil is empty and loaded. Based on the numerical and experimental results, which are in excellent agreement, an electromagnetic characterization of loading radio-frequency (RF) head coils during a UHF MRI experiment is provided. The possibility of using the aforementioned modes for specific types of imaging application is briefly reviewed.
在这项工作中,使用内部时域有限差分软件包在340MHz频率下并结合8T全身MRI系统,对超高场(UHF)MRI中的横向电磁(TEM)谐振器模式进行了数值和实验研究。模拟使用了解剖学详细的人体头部网格和球形头部尺寸的体模,而实验包括电磁等效(与模拟)体模和体内人体头部研究。针对头部线圈腔内发射和接收场的均匀性、电磁波的局部和全局极化以及在谐振器元件上获得的电流分布,在头部线圈空载和加载时的几种线圈模式下进行了深入研究。基于数值和实验结果(两者高度吻合),给出了UHF MRI实验期间加载射频(RF)头部线圈的电磁特性。简要回顾了将上述模式用于特定类型成像应用的可能性。