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一种解释高介电常数材料对磁共振成像中射频线圈性能影响的物理框架。

A Physical Framework to Interpret the Effects of High Permittivity Materials on Radiofrequency Coil Performance in Magnetic Resonance Imaging.

出版信息

IEEE Trans Biomed Eng. 2022 Nov;69(11):3278-3287. doi: 10.1109/TBME.2022.3165763. Epub 2022 Oct 19.

Abstract

OBJECTIVE

We propose a framework to interpret the effects of High Permittivity Materials (HPM) on the performance of radiofrequency coils in Magnetic Resonance Imaging (MRI).

METHODS

Based on a recent formulation of the scattering and propagation properties of spheres, we expanded the field in a layered sphere as a superposition of ingoing and outgoing travelling waves, which allowed us to study the field components with a non-homogeneous transmission line model. We investigated the effects of a layer of HPM surrounding a head-mimicking uniform sphere at 7 tesla.

RESULTS

Through the analysis of impedance and reflection coefficients, we show that by adjusting the properties of the HPM, it is possible to selectively amplify individual modes, or combination of them, modifying the overall field distribution in the sample and increasing signal-to-noise ratio at specific locations. Our results demonstrate that the observed enhanced MRI performance is not merely due to secondary fields generated by displacement currents in the HPM.

CONCLUSIONS

Our formulation explains the effect of HPM in terms of matching, enabling the optimization of the electrical properties of the HPM with a simple mode-matching formula.

SIGNIFICANCE

The proposed method could guide the design of novel radiofrequency coils with integrated HPM.

摘要

目的

我们提出了一个框架来解释高介电常数材料(HPM)对磁共振成像(MRI)中射频线圈性能的影响。

方法

基于最近对球体散射和传播特性的表述,我们将分层球体中的场展开为入射和出射行波的叠加,这使我们能够使用非均匀传输线模型研究场分量。我们研究了在 7 特斯拉下围绕仿人头均匀球体的 HPM 层的影响。

结果

通过分析阻抗和反射系数,我们表明通过调整 HPM 的特性,可以有选择地放大单个模式或它们的组合,从而改变样品中的整体场分布并增加特定位置的信噪比。我们的结果表明,观察到的增强的 MRI 性能不仅仅是由于 HPM 中的位移电流产生的次级场。

结论

我们的表述根据匹配来解释 HPM 的影响,使得可以使用简单的模式匹配公式来优化 HPM 的电特性。

意义

所提出的方法可以指导具有集成 HPM 的新型射频线圈的设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b5e/9724563/fb7ae27a6945/nihms-1843894-f0001.jpg

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