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Planar Quadrature RF Transceiver Design Using Common-Mode Differential-Mode (CMDM) Transmission Line Method for 7T MR Imaging

机译:使用共模差模(CMDM)传输线方法进行7T MR成像的平面正交RF收发器设计

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摘要

The use of quadrature RF magnetic fields has been demonstrated to be an efficient method to reduce transmit power and to increase the signal-to-noise (SNR) in magnetic resonance (MR) imaging. The goal of this project was to develop a new method using the common-mode and differential-mode (CMDM) technique for compact, planar, distributed-element quadrature transmit/receive resonators for MR signal excitation and detection and to investigate its performance for MR imaging, particularly, at ultrahigh magnetic fields. A prototype resonator based on CMDM method implemented by using microstrip transmission line was designed and fabricated for 7T imaging. Both the common mode (CM) and the differential mode (DM) of the resonator were tuned and matched at 298MHz independently. Numerical electromagnetic simulation was performed to verify the orthogonal B1 field direction of the two modes of the CMDM resonator. Both workbench tests and MR imaging experiments were carried out to evaluate the performance. The intrinsic decoupling between the two modes of the CMDM resonator was demonstrated by the bench test, showing a better than -36 dB transmission coefficient between the two modes at resonance frequency. The MR images acquired by using each mode and the images combined in quadrature showed that the CM and DM of the proposed resonator provided similar B1 coverage and achieved SNR improvement in the entire region of interest. The simulation and experimental results demonstrate that the proposed CMDM method with distributed-element transmission line technique is a feasible and efficient technique for planar quadrature RF coil design at ultrahigh fields, providing intrinsic decoupling between two quadrature channels and high frequency capability. Due to its simple and compact geometry and easy implementation of decoupling methods, the CMDM quadrature resonator can possibly be a good candidate for design blocks in multichannel RF coil arrays.
机译:正交射频磁场的使用已被证明是减少发射功率并提高磁共振(MR)成像中信噪比(SNR)的有效方法。该项目的目标是开发一种使用共模和差模(CMDM)技术的新方法,用于紧凑,平面,分布式元件正交发射/接收谐振器,用于MR信号激励和检测,并研究其在MR中的性能成像,特别是在超高磁场下。设计并制作了基于CMDM方法的原型谐振器,该谐振器是通过微带传输线实现的,用于7T成像。谐振器的共模(CM)和差模(DM)均在298MHz处独立调谐和匹配。进行了数值电磁仿真,以验证CMDM谐振器的两种模式的正交B1场方向。进行了工作台测试和MR成像实验,以评估性能。台式测试证明了CMDM谐振器的两种模式之间的固有解耦,表明在谐振频率下两种模式之间的传输系数优于-36 dB。通过使用每种模式获取的MR图像和正交组合的图像显示,所提出的谐振器的CM和DM提供相似的B1覆盖率,并在整个关注区域实现了SNR的改善。仿真和实验结果表明,所提出的带有分布式单元传输线技术的CMDM方法是一种在超高磁场下进行平面正交RF线圈设计的可行且有效的技术,它提供了两个正交通道之间的固有去耦和高频能力。由于其简单而紧凑的几何形状以及去耦方法的易于实现,CMDM正交谐振器可能是多通道RF线圈阵列中设计模块的理想选择。

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