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On the induced electric field gradients in the human body for magnetic stimulation by gradient coils in MRI

机译:MRI中梯度线圈对人体的感应电场梯度的影响

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Prior theoretical studies indicate that the negative spatial derivative of the electric field induced by magnetic stimulation may be one of the main factors contributing to depolarization of the nerve fiber. This paper studies this parameter for peripheral nerve stimulation (PNS) induced by time-varying gradient fields during MRI scans. The numerical calculations are based on an efficient, quasi-static, finite-difference scheme and an anatomically realistic human, full-body model. Whole-body cylindrical and planar gradient sets in MRI systems and various input signals have been explored. The spatial distributions of the induced electric field and their gradients are calculated and attempts are made to correlate these areas with reported experimental stimulation data. The induced electrical field pattern is similar for both the planar coils and cylindrical coils. This study provides some insight into the spatial characteristics of the induced field gradients for PNS in MRI, which may be used to further evaluate the sites where magnetic stimulation is likely to occur and to optimize gradient coil design.
机译:先前的理论研究表明,磁刺激引起的电场的负空间导数可能是导致神经纤维去极化的主要因素之一。本文研究此参数用于在MRI扫描期间由时变梯度场引起的周围神经刺激(PNS)。数值计算基于高效的准静态有限差分方案和解剖学上逼真的人体全身模型。已经探索了MRI系统中的全身圆柱和平面梯度集以及各种输入信号。计算感应电场的空间分布及其梯度,并尝试将这些区域与报告的实验刺激数据相关联。平面线圈和圆柱线圈的感应电场模式都相似。这项研究为MRI中PNS的感应场梯度的空间特征提供了一些见识,可用于进一步评估可能发生磁刺激的部位并优化梯度线圈设计。

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