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用于多核 MRI 和 MRS 的双调谐晶格巴伦。

Dual-Tuned Lattice Balun for Multi-Nuclear MRI and MRS.

出版信息

IEEE Trans Med Imaging. 2022 Jun;41(6):1420-1430. doi: 10.1109/TMI.2022.3140717. Epub 2022 Jun 1.

Abstract

Balun or trap circuits are critical components for suppressing common-mode currents flowing on the outer conductors of coaxial cables in RF coil systems for Magnetic Resonance Imaging (MRI) and Magnetic Resonance Spectroscopy (MRS). Common-mode currents affect coils' tuning and matching, induce losses, pick up extra noise from the surrounding environment, lead to undesired cross-talk, and cause safety concerns in animal and human imaging. First proposed for microwave antenna applications, the Lattice balun has been widely used in MRI coils. It has a small footprint and can be easily integrated with coil tuning/matching circuits. However, the Lattice balun is typically a single-tuned circuit and cannot be used for multi-nuclear MRI and MRS with two RF frequencies. This work describes a dual-tuned Lattice balun design that is suitable for multi-nuclear MRI/MRS. It was first analyzed theoretically to derive component values. RF circuit simulations were then performed to validate the theoretical analysis and provide guidance for practical construction. Based on the simulation results, a dual-tuned balun circuit was built for 7T H/Na MRI and bench tested. The fabricated dual-tuned balun exhibits superior performance at the Larmor frequencies of both H and Na, with less than 0.15 dB insertion loss and better than 17 dB common-mode rejection ratio at both frequencies.

摘要

巴伦或陷波器电路是磁共振成像(MRI)和磁共振波谱(MRS)系统中同轴电缆外导体上共模电流抑制的关键元件。共模电流会影响线圈的调谐和匹配,导致损耗,从周围环境拾取额外的噪声,导致不希望的串扰,并对动物和人体成像造成安全隐患。巴伦最初是为微波天线应用而提出的,已经在 MRI 线圈中得到了广泛应用。它具有较小的占地面积,并且可以很容易地与线圈调谐/匹配电路集成。然而,巴伦通常是单调谐电路,不能用于具有两个射频频率的多核 MRI 和 MRS。这项工作描述了一种适用于多核 MRI/MRS 的双调谐巴伦设计。首先对其进行了理论分析,以得出元件值。然后进行了射频电路模拟,以验证理论分析并为实际构建提供指导。根据模拟结果,为 7T H/Na MRI 构建并测试了一个双调谐巴伦电路。所制造的双调谐巴伦在 H 和 Na 的拉莫尔频率下表现出优异的性能,在两个频率下的插入损耗小于 0.15 dB,共模抑制比优于 17 dB。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af63/9812758/aaf4875d0ce3/nihms-1850154-f0001.jpg

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