Design of radiofrequency coils for magnetic resonance imaging applications at high fields: technological and physical feasibility issues

T. Ibrahim, R. Lee, B. Baertlein, P. Robitaille
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Abstract

In the field of medical magnetic resonance imaging (MRI), there has been a constant drive towards more powerful magnets and therefore higher operational frequencies. Imaging at higher fields has several benefits, so that images with much greater detail can be obtained using high field MRI systems with high static (B/sub 0/) field strength. Operation at high frequencies, however, adds significant technical challenges to the design of radiofrequency (RF) coils. We address the physics associated with RF coils and their electromagnetic interactions with biological tissue. This is accomplished by examining the B/sub 1/ field distribution and the RF power requirements between 135 MHz and 470 MHz. We also propose methods to optimize the B/sub 1/ field distribution at ultra high field (/spl ges/ 300 MHz). Using the finite difference time domain (FDTD) method, antenna array concepts are utilized to excite a volume head coil (TEM resonator) such that an optimal B/sub 1/ field distribution is achieved in the head. Input excitations with both variable phase and magnitude are evaluated for 2, 3, 4, 6, and 10 excitation ports in a 24-strut TEM resonator loaded with an 18-tissue anatomically detailed human head model. Finally, true phased array is implemented to modify the phase and magnitude of all the 24 possible ports in the 24-strut TEM resonator. By properly exciting each drive port, significantly improved B/sub 1/ field homogeneity was obtained.
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高磁场磁共振成像应用射频线圈的设计:技术和物理可行性问题
在医学磁共振成像(MRI)领域,人们一直在追求更强大的磁铁,从而获得更高的工作频率。高场成像有几个好处,因此使用高静态(B/sub 0/)场强的高场MRI系统可以获得更详细的图像。然而,高频操作给射频(RF)线圈的设计增加了重大的技术挑战。我们解决与射频线圈及其与生物组织的电磁相互作用相关的物理问题。这是通过检查B/sub /场分布和135 MHz和470 MHz之间的射频功率要求来完成的。我们还提出了在超高场(/spl ges/ 300 MHz)下优化B/sub / 1/场分布的方法。利用时域有限差分(FDTD)方法,利用天线阵列的概念来激励体积头部线圈(TEM谐振器),从而在头部获得最佳的B/sub /场分布。在装载有18个组织解剖细节的人体头部模型的24杆TEM谐振器中,对2、3、4、6和10个激励端口进行了相位和幅度可变的输入激励评估。最后,采用真相控阵对24杆TEM谐振器中所有24个可能端口的相位和幅度进行修改。通过对各驱动口进行适当激励,可显著改善B/sub / field的均匀性。
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