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表面线圈的B1+和B1-场模式对样品电学性质及磁共振工作频率的依赖性。

Dependence of B1+ and B1- Field Patterns of Surface Coils on the Electrical Properties of the Sample and the MR Operating Frequency.

作者信息

Vaidya Manushka V, Collins Christopher M, Sodickson Daniel K, Brown Ryan, Wiggins Graham C, Lattanzi Riccardo

机构信息

Department of Radiology, Center for Advanced Imaging Innovation and Research (CAIR) and Bernard and Irene Schwartz Center for Biomedical Imaging, New York University School of Medicine, New York, NY 10016; The Sackler Institute of Graduate Biomedical Sciences, New York University School of Medicine, New York, NY 10016; NYU WIRELESS, Polytechnic Institute of New York University, Brooklyn, NY 11201.

Department of Radiology, Center for Advanced Imaging Innovation and Research (CAIR) and Bernard and Irene Schwartz Center for Biomedical Imaging, New York University School of Medicine, New York, NY 10016; NYU WIRELESS, Polytechnic Institute of New York University, Brooklyn, NY 11201.

出版信息

Concepts Magn Reson Part B Magn Reson Eng. 2016 Feb;46(1):25-40. doi: 10.1002/cmr.b.21319. Epub 2016 Feb 4.

Abstract

In high field MRI, the spatial distribution of the radiofrequency magnetic ( ) field is usually affected by the presence of the sample. For hardware design and to aid interpretation of experimental results, it is important both to anticipate and to accurately simulate the behavior of these fields. Fields generated by a radiofrequency surface coil were simulated using dyadic Green's functions, or experimentally measured over a range of frequencies inside an object whose electrical properties were varied to illustrate a variety of transmit [Formula: see text] and receive [Formula: see text] field patterns. In this work, we examine how changes in polarization of the field and interference of propagating waves in an object can affect the spatial distribution. Results are explained conceptually using Maxwell's equations and intuitive illustrations. We demonstrate that the electrical conductivity alters the spatial distribution of distinct polarized components of the field, causing "twisted" transmit and receive field patterns, and asymmetries between [Formula: see text] and [Formula: see text]. Additionally, interference patterns due to wavelength effects are observed at high field in samples with high relative permittivity and near-zero conductivity, but are not present in lossy samples due to the attenuation of propagating EM fields. This work provides a conceptual framework for understanding spatial distributions for surface coils and can provide guidance for RF engineers.

摘要

在高场磁共振成像中,射频磁场的空间分布通常会受到样本存在的影响。对于硬件设计以及辅助实验结果的解释而言,预测并准确模拟这些场的行为都很重要。利用并矢格林函数对射频表面线圈产生的场进行了模拟,或者在一个物体内部的一系列频率上进行了实验测量,该物体的电学特性发生了变化,以展示各种发射场和接收场模式。在这项工作中,我们研究了场的极化变化以及物体中传播波的干涉如何影响空间分布。利用麦克斯韦方程组和直观的图示从概念上对结果进行了解释。我们证明,电导率会改变场的不同极化分量的空间分布,导致发射和接收场模式出现“扭曲”,以及E场和H场之间的不对称性。此外,在具有高相对介电常数和近零电导率的样本中,在高场下观察到了由于波长效应产生的干涉图样,但在有损耗的样本中由于传播电磁场的衰减而不存在这种图样。这项工作为理解表面线圈的空间分布提供了一个概念框架,并可为射频工程师提供指导。

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