Department of Radiology, New York University, New York, NY, USA.
Magn Reson Med. 2012 Apr;67(4):1183-93. doi: 10.1002/mrm.23107. Epub 2011 Aug 12.
In 7 T traveling wave imaging, waveguide modes supported by the scanner radiofrequency shield are used to excite an MR signal in samples or tissue which may be several meters away from the antenna used to drive radiofrequency power into the system. To explore the potential merits of traveling wave excitation for whole-body imaging at 7 T, we compare numerical simulations of traveling wave and TEM systems, and juxtapose full-wave electrodynamic simulations using a human body model with in vivo human traveling wave imaging at multiple stations covering the entire body. The simulated and in vivo traveling wave results correspond well, with strong signal at the periphery of the body and weak signal deep in the torso. These numerical results also illustrate the complicated wave behavior that emerges when a body is present. The TEM resonator simulation allowed comparison of traveling wave excitation with standard quadrature excitation, showing that while the traveling wave B +1 per unit drive voltage is much less than that of the TEM system, the square of the average B +1 compared to peak specific absorption rate (SAR) values can be comparable in certain imaging planes. Both systems produce highly inhomogeneous excitation of MR signal in the torso, suggesting that B(1) shimming or other parallel transmission methods are necessary for 7 T whole body imaging.
在 7T 行波成像中,使用扫描仪射频屏蔽所支持的波导模式来激励位于数米之外的、用于向系统中输入射频功率的天线的样本或组织中的磁共振信号。为了探索行波激励在 7T 全身成像中的潜在优势,我们比较了行波和 TEM 系统的数值模拟,并将人体模型的全波电磁仿真与多个站的体内人体行波成像进行并列,这些站覆盖了整个身体。模拟和体内行波结果吻合较好,在身体的外围有强信号,而在躯干深处则有弱信号。这些数值结果还说明了在存在人体时出现的复杂波行为。TEM 谐振器仿真允许将行波激励与标准正交激励进行比较,结果表明,虽然行波的单位驱动电压下的 B+1 比 TEM 系统小得多,但与峰值比吸收率(SAR)值相比,平均 B+1 的平方在某些成像平面中可以相当。两种系统在躯干中产生高度不均匀的磁共振信号激励,这表明对于 7T 全身成像,需要 B(1) 匀场或其他并行传输方法。