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Mean-Field Formulation of Maxwell Equations to Model Electrically Inhomogeneous and Isotropic Media

机译:麦克斯韦方程的均值场公式,用于建模电非均质和各向同性介质

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Maxwell equations were originally designed to describe classic electromagnetic phenomena in any type of medium. In particular, to describe electromagnetic phenomena under the quasistatic electric approximation in media that are electrically inhomogeneous and isotropic, such as for example when there are strong spatial variations of conductivity, the formalism must be adapted according to the problem considered. We review here two approaches to this problem, first a “microscopic” model, where the spatial variations of conductivity and permittivity are explicitly taken into account. In a second “macroscopic” model, these spatial variations are taken on average by using a mean-field formulation of Maxwell equations. Both of these models can describe the electromagnetic behavior of inhomogeneous media. We illustrate this formalism to describe the electric behavior of biological media, such as brain tissue, which is typically very inhomogeneous. We show that the theory predicts that for the typical frequency range of biological phenomena (lower than about 1000 Hz), the inhomogeneous nature of the medium has a determinant influence.
机译:麦克斯韦方程最初旨在描述任何类型的介质中的经典电磁现象。特别地,为了描述在电学不均匀且各向同性的介质中的准静态电近似下的电磁现象,例如当电导率存在很大的空间变化时,必须根据所考虑的问题来调整形式。我们在这里回顾解决该问题的两种方法,第一种是“微观”模型,其中明确考虑了电导率和介电常数的空间变化。在第二个“宏观”模型中,这些空间变化是通过使用麦克斯韦方程的均值场公式平均得出的。这两个模型都可以描述非均匀介质的电磁行为。我们用这种形式主义来描述生物介质(例如脑组织)的电行为,这种行为通常非常不均匀。我们表明,该理论预测,对于典型的生物现象频率范围(低于约1000 Hz),介质的不均匀性质具有决定性的影响。

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