Constitutive tensor in the geometrized Maxwell theory

A. Korolkova
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Abstract

It is generally accepted that the main obstacle to the application of Riemannian geometrization of Maxwell’s equations is an insufficient number of parameters defining a geometrized medium. In the classical description of the equations of electrodynamics in the medium, a constitutive tensor with 20 components is used. With Riemannian geometrization, the constitutive tensor is constructed from a Riemannian metric tensor having 10 components. It is assumed that this discrepancy prevents the application of Riemannian geometrization of Maxwell’s equations. It is necessary to study the scope of applicability of the Riemannian geometrization of Maxwell’s equations. To determine whether the lack of components is really critical for the application of Riemannian geometrization. To determine the applicability of Riemannian geometrization, the most common variants of electromagnetic media are considered. The structure of the dielectric and magnetic permittivity is written out for them, the number of significant components for these tensors is determined. Practically all the considered types of electromagnetic media require less than ten parameters to describe the constitutive tensor. In the Riemannian geometrization of Maxwell’s equations, the requirement of a single impedance of the medium is critical. It is possible to circumvent this limitation by moving from the complete Maxwell’s equations to the approximation of geometric optics. The Riemannian geometrization of Maxwell’s equations is applicable to a wide variety of media types, but only for approximating geometric optics.
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几何化麦克斯韦理论中的本构张量
人们普遍认为,麦克斯韦方程组的黎曼几何化应用的主要障碍是定义几何化介质的参数数量不足。在经典的介质电动力学方程描述中,使用了20个分量的本构张量。在黎曼几何化中,本构张量由一个有10个分量的黎曼度量张量构造而成。假定这种差异妨碍了麦克斯韦方程组的黎曼几何化的应用。有必要研究麦克斯韦方程组的黎曼几何化的适用范围。确定缺乏分量是否真的是黎曼几何化应用的关键。为了确定黎曼几何化的适用性,考虑了电磁介质的最常见变体。写出了它们的介电常数和磁介电常数的结构,确定了这些张量的有效分量的数目。实际上,所有考虑的电磁介质类型都需要少于10个参数来描述本构张量。在麦克斯韦方程组的黎曼几何化中,介质的单一阻抗要求是至关重要的。通过从完整的麦克斯韦方程组转向几何光学的近似,有可能绕过这一限制。麦克斯韦方程组的黎曼几何化适用于多种介质类型,但仅适用于近似几何光学。
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来源期刊
CiteScore
0.60
自引率
0.00%
发文量
20
审稿时长
10 weeks
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