IEEE Trans Med Imaging. 2021 Apr;40(4):1267-1278. doi: 10.1109/TMI.2021.3051390. Epub 2021 Apr 1.
Magnetic resonance has become a backbone of medical imaging but suffers from inherently low sensitivity. This can be alleviated by improved radio frequency (RF) coils. Multi-turn multi-gap coaxial coils (MTMG-CCs) introduced in this work are flexible, form-fitting RF coils extending the concept of the single-turn single-gap CC by introducing multiple cable turns and/or gaps. It is demonstrated that this enables free choice of the coil diameter, and thus, optimizing it for the application to a certain anatomical site, while operating at the self-resonance frequency. An equivalent circuit for MTMG-CCs is modeled to predict their resonance frequency. Possible configurations regarding size, number of turns and gaps, and cable types for different B field strengths are calculated. Standard copper wire loop coils (SCs) and flexible CCs made from commercial coaxial cable were fabricated as receive-only coils for 3 T and transmit/receive coils at 7 T with diameters between 4 and 15 cm. Electromagnetic simulations are used to investigate the currents on MTMG-CCs, and demonstrate comparable specific absorption rate of 7 T CCs and SCs. Signal-to-noise ratio (SNR), transmit efficiency, and active detuning performance of CCs were compared in bench tests and MR experiments. For the form-fitted receive-only CCs at 3 T no significant SNR degradation was found as compared to flat SCs on a balloon phantom. Form-fitted transmit/receive CCs at 7 T showed higher transmit efficiency and SNR. MTMG-CCs can be sized to optimize sensitivity, are flexible and lightweight, and could therefore enable the fabrication of wearable coils with improved patient comfort.
磁共振已成为医学成像的骨干技术,但存在固有灵敏度低的问题。这可以通过改进射频(RF)线圈来缓解。本文介绍的多匝多缝隙同轴线圈(MTMG-CC)具有柔韧性,可贴合身体形状,通过引入多个电缆匝和/或缝隙扩展了单匝单缝隙 CC 的概念。结果表明,这可以自由选择线圈直径,从而针对特定解剖部位的应用进行优化,同时在自谐振频率下工作。建立了 MTMG-CC 的等效电路模型来预测其谐振频率。针对不同的 B 场强度,计算了大小、匝数和缝隙数以及电缆类型的可能配置。标准铜丝环线圈(SCs)和商业同轴电缆制成的柔性 CC 被制作为 3 T 的接收线圈和 7 T 的发射/接收线圈,直径在 4 至 15 厘米之间。采用电磁仿真研究了 MTMG-CC 上的电流,证明了 7 T CC 和 SC 的比吸收率相当。在台架测试和磁共振实验中比较了 CC 的信噪比(SNR)、发射效率和主动调谐性能。与气球模型上的平面 SC 相比,3 T 的贴合式接收专用 CC 并未发现 SNR 明显降低。7 T 的贴合式发射/接收 CC 显示出更高的发射效率和 SNR。MTMG-CC 可以根据灵敏度进行定制,具有柔韧性和轻便性,因此可以制造出具有更好患者舒适度的可穿戴线圈。