首页> 外文期刊>Physics in medicine and biology. >Analytical solutions of electric potential and impedance for a multilayered spherical volume conductor excited by time-harmonic electric current source: application in brain EIT.
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Analytical solutions of electric potential and impedance for a multilayered spherical volume conductor excited by time-harmonic electric current source: application in brain EIT.

机译:时谐电流源激发的多层球形体导体的电势和阻抗的解析解:在脑电刺激中的应用。

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摘要

A model of a multilayered spherical volume conductor with four electrodes is built. In this model, a time-harmonic electric current is injected into the sphere through a pair of drive electrodes, and electric potential is measured by the other pair of measurement electrodes. By solving the boundary value problem of the electromagnetic field, the analytical solutions of electric potential and impedance in the whole conduction region are derived. The theoretical values of electric potential on the surface of the sphere are in good accordance with the experimental results. The analytical solutions are then applied to the simulation of the forward problem of brain electrical impedance tomography (EIT). The results show that, for a real human head, the imaginary part of the electric potential is not small enough to be ignored at above 20 kHz, and there exists an approximate linear relationship between the real and imaginary parts of the electric potential when the electromagnetic parameters of the innermostlayer keep unchanged. Increase in the conductivity of the innermost layer leads to a decrease of the magnitude of both real and imaginary parts of the electric potential on the scalp. However, the increase of permittivity makes the magnitude of the imaginary part of the electric potential increase while that of the real part decreases, and vice versa.
机译:建立了具有四个电极的多层球形体导体模型。在该模型中,将时谐电流通过一对驱动电极注入球体,并通过另一对测量电极测量电势。通过解决电磁场的边值问题,推导了整个导电区域的电势和阻抗的解析解。球体表面的电势理论值与实验结果完全吻合。然后将分析解决方案应用于模拟脑电阻抗断层扫描(EIT)的正向问题。结果表明,对于一个真实的人的头部,电势的虚部并不小,在20 kHz以上的频率下可以忽略不计,并且当电磁场发生时,电势的虚部与虚部之间存在近似的线性关系。最内层的参数保持不变。最内层的电导率的增加导致头皮上电势的实部和虚部的大小均减小。然而,介电常数的增加使得电势的虚部的大小增大而实部的虚部的大小减小,反之亦然。

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