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经颅磁刺激的三维头部模型模拟

Three-dimensional head model simulation of transcranial magnetic stimulation.

作者信息

Wagner Tim A, Zahn Markus, Grodzinsky Alan J, Pascual-Leone Alvaro

机构信息

Harvard/Massachusetts Institute of Technology's Division of Health Sciences and Technology program, Cambridge, MA 02139, USA.

出版信息

IEEE Trans Biomed Eng. 2004 Sep;51(9):1586-98. doi: 10.1109/TBME.2004.827925.

Abstract

This paper presents a finite element method used to evaluate the induced current density in a realistic model of the human head exposed to a time varying magnetic field. The tissue electric properties were varied to ascertain their influence on the induced currents. Current density magnitude and vector plots were generated throughout the tissue layers to determine the effects of tissue boundaries on the field. The current density magnitude correlated to the conductivity of the tissue in all the cases tested except where the tissue permittivity was raised to a level to allow for displacement currents. In this case, the permittivity of the tissue was the dominant factor. Current density components normal to the tissue interface were shown to exist in all solutions within the cortex contrary to the predictions of present models that rely on symmetrical geometries. Additionally, modifications in the cortical geometry were shown to perturb the field so that the site of activation could be altered in diseased patient populations. Finally, by varying the tissue permittivity values and the source frequency, we tested the effects of alpha dispersion theories on transcranial magnetic stimulation.

摘要

本文介绍了一种有限元方法,用于评估暴露于随时间变化磁场中的真实人体头部模型中的感应电流密度。改变组织的电学特性以确定它们对感应电流的影响。在整个组织层生成电流密度大小和矢量图,以确定组织边界对磁场的影响。在所有测试案例中,除了将组织电容率提高到允许位移电流的水平外,电流密度大小与组织的电导率相关。在这种情况下,组织的电容率是主导因素。与依赖对称几何形状的现有模型的预测相反,在皮质内的所有解中都显示存在垂直于组织界面的电流密度分量。此外,皮质几何形状的改变会干扰磁场,从而在患病患者群体中改变激活部位。最后,通过改变组织电容率值和源频率,我们测试了α色散理论对经颅磁刺激的影响。

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