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3T下脑电图磁共振成像期间射频感应加热与导联电导率的数值与实验分析

Numerical and Experimental Analysis of Radiofrequency-Induced Heating Versus Lead Conductivity During EEG-MRI at 3 T.

作者信息

Atefi Seyed Reza, Serano Peter, Poulsen Catherine, Angelone Leonardo M, Bonmassar Giorgio

机构信息

Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Harvard Medical School, Charlestown, MA 02129 USA, and also with the University of Boras 50190, Boras Sweden (

Division of Biomedical Physics, Center for Devices and Radiological Health, Office of Science and Engineering Laboratories, U.S. Food and Drug Administration, Silver Spring, MD 11401 USA (

出版信息

IEEE Trans Electromagn Compat. 2019 Jun;61(3):852-859. doi: 10.1109/TEMC.2018.2840050. Epub 2018 Jun 25.

Abstract

This study investigates radiofrequency (RF)-induced heating in a head model with a 256-channel electroencephalogram (EEG) cap during magnetic resonance imaging (MRI). Nine computational models were implemented each with different EEG lead electrical conductivity, ranging from 1 to 5.8 × 10 S/m. The peak values of specific absorption rate (SAR) averaged over different volumes were calculated for each lead conductivity. Experimental measurements were also performed at 3-T MRI with a Gracilaria Lichenoides (GL) phantom with and without a low-conductive EEG lead cap ("InkNet"). The simulation results showed that SAR was a nonlinear function of the EEG lead conductivity. The experimental results were in line with the numerical simulations. Specifically, there was a Δ of 1.7 °C in the GL phantom without leads compared to Δ of 1.8 °C calculated with the simulations. Additionally, there was a Δ of 1.5 °C in the GL phantom with the InkNet compared to a Δ of 1.7 °C in the simulations with a cap of similar conductivity. The results showed that SAR is affected by specific location, number of electrodes, and the volume of tissue considered. As such, SAR averaged over the whole head, or even SAR averaged over volumes of 1 or 0.1 g, may conceal significant heating effects and local analysis of RF heating (in terms of peak SAR and temperature) is needed.

摘要

本研究调查了在磁共振成像(MRI)过程中,带有256通道脑电图(EEG)帽的头部模型中的射频(RF)感应加热情况。实施了九个计算模型,每个模型的EEG导联电导率不同,范围从1至5.8×10 S/m。针对每个导联电导率,计算了不同体积上平均的比吸收率(SAR)峰值。还使用了一种海苔(GL)体模,在有和没有低导电率EEG导联帽(“InkNet”)的情况下,在3-T MRI上进行了实验测量。模拟结果表明,SAR是EEG导联电导率的非线性函数。实验结果与数值模拟结果一致。具体而言,无导联的GL体模中的温度变化为1.7°C,而模拟计算得出的温度变化为1.8°C。此外,带有InkNet的GL体模中的温度变化为1.5°C,而具有相似电导率帽的模拟中的温度变化为1.7°C。结果表明,SAR受特定位置、电极数量和所考虑的组织体积影响。因此,整个头部平均的SAR,甚至1或0.1 g体积平均的SAR,可能会掩盖显著的加热效应,需要对RF加热进行局部分析(就峰值SAR和温度而言)。

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