Department of Biomedical Engineering, State University of New York at Buffalo, Buffalo, NY 14260, USA.
Department of Biomedical Engineering, State University of New York at Buffalo, Buffalo, NY 14260, USA; Department of Electrical Engineering, State University of New York at Buffalo, Buffalo, NY 14260, USA.
J Magn Reson. 2022 Dec;345:107321. doi: 10.1016/j.jmr.2022.107321. Epub 2022 Oct 29.
Electromagnetic decoupling among a close-fitting or high-density transceiver RF array elements is required to maintain the integrity of the magnetic flux density from individual channel for enhanced performance in detection sensitivity and parallel imaging. High-impedance RF coils have demonstrated to be a prominent design method to circumvent these coupling issues. Yet, inherent characteristics of these coils have ramification on the B field efficiency and SNR. In this work, we propose a hairpin high impedance RF resonator design for highly decoupled multichannel transceiver arrays at ultrahigh magnetic fields. Due to the high impedance property of the hairpin resonators, the proposed transceiver array can provide high decoupling performance without using any dedicated decoupling circuit among the resonant elements. Because of elimination of lumped inductors in the resonator circuit, higher B field efficiency in imaging subjects can be expected. In order to validate the feasibility of the proposed hairpin RF coils, systematical studies on decoupling performance, field distribution, and SNR are performed, and the results are compared with those obtained from existing high-impedance RF coil, e.g., "self-decoupled RF coil". To further investigate its performance, an 8-channel head coil array using the proposed hairpin resonators loaded with a cylindrical phantom is designed, demonstrating a 19 % increase of the B field intensity compared to the self-decoupled coils at 7 T. Furthermore, the characteristics of the hairpin RF coils are evaluated using a more realistic human head voxel model numerically. The proposed hairpin RF coil provides excellent decoupling performance and superior RF magnetic field efficiency compared to the "self-decoupled" high impedance coils. Bench test of a pair of fabricated hairpin coils prove to be in good accordance with numerical results.
为了保持单个通道磁通密度的完整性,以提高检测灵敏度和并行成像性能,需要对紧密贴合或高密度收发器射频阵列元件进行电磁去耦。高阻抗射频线圈已被证明是一种出色的设计方法,可以规避这些耦合问题。然而,这些线圈的固有特性对 B 场效率和 SNR 有影响。在这项工作中,我们提出了一种用于超高磁场下高去耦多通道收发器阵列的发夹式高阻抗 RF 谐振器设计。由于发夹谐振器的高阻抗特性,所提出的收发器阵列可以在不使用谐振元件之间任何专用去耦电路的情况下提供高去耦性能。由于谐振器电路中消除了集总电感,可以预期在成像对象中具有更高的 B 场效率。为了验证所提出的发夹 RF 线圈的可行性,对去耦性能、场分布和 SNR 进行了系统研究,并将结果与现有的高阻抗 RF 线圈(例如“自去耦 RF 线圈”)的结果进行了比较。为了进一步研究其性能,设计了一个使用所提出的发夹谐振器加载圆柱形仿体的 8 通道头部线圈阵列,在 7T 时与自去耦线圈相比,B 场强度增加了 19%。此外,还使用更真实的人体头部体素模型对发夹 RF 线圈的特性进行了数值评估。与“自去耦”高阻抗线圈相比,所提出的发夹 RF 线圈具有出色的去耦性能和更高的射频磁场效率。一对制造的发夹线圈的台架测试证明与数值结果非常吻合。