电磁场积分方程的协变表示

Q3 Materials Science
Sergey G. Fedosin
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引用次数: 1

摘要

以协变形式给出了在弯曲时空中有效的电场和磁场的高斯积分定理、电磁感应的法拉第定律、磁场循环定理、矢量势的通量和循环定理,并给出了磁通和磁通、电动势和矢量势循环的协变公式。特别地,电动势由闭合曲线上的线积分表示,而在积分中,除了涡电场强度外,还出现了度量张量的行列式。类似地,磁通量由磁场感应与度量张量的行列式的乘积的表面积分表示。引入了一个新的物理量——积分标量势,其随时间的变化率决定了矢量势通过闭合表面的通量。结果表明,常用的四维Kelvin-Stokes定理不允许完全推导电磁场的积分定律,并且在协变表示法中需要添加度量张量的行列式,此外,Kelvin-Stokes定理的有效性仅限于度量张量的行列式和等值线面积与时间无关的情况。这种缺点在使用对偶电磁场张量的散度定理和方程的方法中并不存在。预测了一种新的效应,根据这种效应,即使在没有电流的情况下,如果该轮廓的面积发生变化,磁场的循环也会出现。与电磁感应类似,为了使磁场循环出现,穿过轮廓区域的电场通量将随时间变化是很重要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ON THE COVARIANT REPRESENTATION OF INTEGRAL EQUATIONS OF THE ELECTROMAGNETIC FIELD
Gauss integral theorems for electric and magnetic fields, Faradays law of electromagnetic induction, magnetic field circulation theorem, theorems on the flux and circulation of vector potential, which are valid in curved spacetime, are presented in a covariant form. Covariant formulas for magnetic and electric fluxes, for electromotive force and circulation of the vector potential are provided. In particular, the electromotive force is expressed by a line integral over a closed curve, while in the integral, in addition to the vortex electric field strength, a determinant of the metric tensor also appears. Similarly, the magnetic flux is expressed by a surface integral from the product of magnetic field induction by the determinant of the metric tensor. A new physical quantity is introduced - the integral scalar potential, the rate of change of which over time determines the flux of vector potential through a closed surface. It is shown that the commonly used four-dimensional Kelvin-Stokes theorem does not allow one to deduce fully the integral laws of the electromagnetic field and in the covariant notation requires the addition of determinant of the metric tensor, besides the validity of the Kelvin-Stokes theorem is limited to the cases when determinant of metric tensor and the contour area are independent from time. This disadvantage is not present in the approach that uses the divergence theorem and equation for the dual electromagnetic field tensor. A new effect is predicted, according to which the circulation of magnetic field can appear even in the absence of electric current and with a constant electric field through the contour, if the area of this contour would change. By analogy with electromagnetic induction, for the magnetic field circulation to appear it is important that electric field flux that passes through the area of the contour would change over time.
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来源期刊
Progress in Electromagnetics Research C
Progress in Electromagnetics Research C Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
2.70
自引率
0.00%
发文量
113
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