单元细胞密度对栅格和条纹超表面的影响

IF 3 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Robert Kowal;Lucas Knull;Ivan Vogt;Max Joris Hubmann;Daniel Düx;Bennet Hensen;Frank Wacker;Oliver Speck;Holger Maune
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引用次数: 0

摘要

超表面通过局部提高扫描仪集成接收线圈的灵敏度,使得无需电缆就可以进行磁共振成像(MRI)。本研究系统地评估了一种新的网格设计,为患者成像提供信号增强。分析了所提出的超表面网格设计的潜力,并将其与条纹型超表面进行了比较。通过数值模拟、工作台测量和3特斯拉的MRI实验深入研究了这些影响。评估了使用集成体或脊柱线圈的信噪比(SNR)差异,以及超表面取向的影响。网格设计为磁共振成像提供了有利的特征模式,与条纹超表面相比,它对方向的依赖程度明显降低。使用最密集的网格,实现的信噪比比最间隔的设计高出26%以上。超表面成像与脊柱线圈相结合优于体线圈。应用超表面进行膝关节成像,局部信噪比比仅使用脊柱线圈的扫描提高了10倍以上。高密度网格超表面提供了与评估的众多设计相比的优势。这项工作为MRI超表面的未来发展提供了一个全面的基础,其优势可以在介入放射学领域得到利用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of Unit Cell Density on Grid and Stripe Metasurfaces for MRI Receive Enhancement
Metasurfaces enable magnetic resonance imaging (MRI) without cables inside the bore by locally improving the sensitivity of scanner-integrated receive coils. This study systematically evaluates a novel grid design to provide signal enhancement for patient imaging. The potential of the proposed metasurface grid design was analyzed regarding its unit cell density and compared with stripe type metasurfaces. The effects were examined in-depth by numerical simulation, workbench measurements, and MRI experiments at 3 Tesla. Differences in the signal-to-noise ratio (SNR) using either the integrated body or spine coils were evaluated, as well as the influence of the metasurface orientation. The grid design provided a favorable eigenmode usable for MR imaging, where it has shown significantly less dependence on orientation, compared to stripe metasurfaces. With the densest grid, more than 26% higher SNR than its most spaced design was achieved. Combining the metasurface for imaging with the spine coil proved to be superior to the body coil. Applying the metasurface for knee imaging, the SNR was locally enhanced by more than 10-fold compared to the scan with only the spine coil. The high-density grid metasurfaces provided benefits compared to the multitude of designs evaluated. This work provides a comprehensive foundation for future developments of metasurfaces for MRI, whose advantages may be exploited e.g. in the domain of interventional radiology.
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来源期刊
CiteScore
5.80
自引率
9.40%
发文量
58
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