增强磁共振成像灵敏度的多模态同心表面线圈。

ArXiv Pub Date : 2025-08-20
Yunkun Zhao, Aditya A Bhosale, Xiaoliang Zhang
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引用次数: 0

摘要

本研究介绍了一种新型多模态同心表面线圈的设计、仿真和实验验证,该线圈用于MR成像,可在保持低SAR的同时实现更高的B1场效率,以增强成像性能。该线圈包括多个不同尺寸的电磁耦合同心谐振器。将期望模式的谐振频率调谐到127 MHz,作为示例,以演示所提出的技术在3特斯拉时的性能。对设计方案进行了全波电磁仿真,并进行了样机台架试验,以评估线圈的B1场效率和分布、多模态谐振行为、散射参数和SAR性能。采用电感电流消除或磁壁去耦来增强多通道配置中的通道隔离,以证明将这种多模态技术应用于射频阵列设计和并行成像的可行性。实验结果表明,与相同尺寸的传统表面线圈相比,该同心线圈在3特斯拉下具有更高的B1场效率和更低的SAR。样机的台架测量证实了调谐和阻抗匹配的成功,测量的S11和S21参数验证了解耦策略的有效性。B1映射实验进一步证明了跨多个平面的高效射频功率传输。这些研究结果表明,所提出的多模态同心线圈有潜力作为传统表面线圈的高性能磁共振成像的有前途的替代品,提供更高的射频效率,降低SAR,以及构建多通道射频阵列的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multimodal concentric surface coils for enhanced sensitivity in MR imaging.

This study presents the design, simulation, and experimental validation of a novel multimodal concentric surface coil for MR imaging, developed to achieve higher B1 field efficiency while maintaining low SAR for enhanced imaging performance. The coil comprises multiple electromagnetically coupled concentric resonators of varying sizes. The resonant frequency of a desired mode is tuned to 127 MHz, as an example, to demonstrate the performance of the proposed technique at 3 Tesla. Fullwave electromagnetic simulations of the proposed design and bench tests of fabricated prototypes were conducted to evaluate the coil's B1 field efficiency and distribution, multimodal resonance behavior, scattering parameters, and SAR performance. Inductive Current Elimination or magnetic wall decoupling was implemented to enhance channel isolation in a multi channel configuration to demonstrate the feasibility of applying this multimodal technique to RF array design and parallel imaging. Experimental results show that the proposed concentric coil achieves higher B1 field efficiency and reduced SAR compared to a conventional surface coil of the same size operating at 3 Tesla. Bench measurements on the prototypes confirmed successful tuning and impedance matching, with measured S11 and S21 parameters validating the effectiveness of the decoupling strategy. B1 mapping experiments further demonstrated efficient RF power delivery across multiple planes. These findings suggest that the proposed multimodal concentric coil has the potential to serve as a promising alternative to conventional surface coils for high performance MR imaging, offering enhanced RF efficiency, reduced SAR, and the ability to construct multichannel RF arrays.

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