描述具有多个运动物体/介质的机械驱动介质系统的Maxwell方程的最新进展

Zhong Lin Wang;Jiajia Shao
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引用次数: 0

摘要

机械驱动介质系统的麦克斯韦方程组(MEs-f-MDMS)已被用于表征可能以复杂轨迹加速的多个慢速移动介质的电磁特性。这种方法从四个物理定律的积分形式开始,不同于使用洛伦兹变换将在两个惯性参考系中观察到的电磁现象与相对运动相关联的经典方法。运动物体/介质内部的控制方程是MEs-f-MDMS,而真空中的控制方程则是经典的麦克斯韦方程;两者的完全解在介质表面/界面处协调,并满足边界条件。本文综述了MEs-f-MDMS的背景、物理原理和数学推导。文中还提出了用数学方法求解MEs-f-MDMS的策略。系统总结了MEs-f-MDMS的独特进展及其在工程中的潜在应用。我们发现洛伦兹变换对于处理真空中移动点电荷的电磁现象是完美的;然而,对于移动物体,Maxwell方程的协方差可能不成立,并且如果速度较低,则可能需要使用MEs-f-MDMS。最后,还回顾了在不假设突然边界的情况下在纳米尺度上处理边界条件的最新进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent Progress on the Maxwell's Equations for Describing a Mechano-Driven Medium System with Multiple Moving Objects/Media
Maxwell's equations for a mechano-driven media system (MEs-f-MDMS) have been used to characterize the electromagnetism of multi-slow-moving media that may be accelerated with complex trajectories. Such an approach starts from the integral forms of the four physics laws and is different from the classical approach of using the Lorentz transformation for correlating the electromagnetic phenomena observed in two inertial reference frames with relative motion. The governing equations inside the moving object/medium are the MEs-f-MDMS, and those in vacuum are the classical Maxwell's equations; the full solutions of both reconcile at the medium surface/interface and satisfy the boundary conditions. This paper reviews the background, physical principle, and mathematical derivations for formulating the MEs-f-MDMS. Strategies are also presented for mathematically solving the MEs-f-MDMS. The unique advances made by the MEs-f-MDMS have been systematically summarized, as are their potential applications in engineering. We found that the Lorentz transformation is perfect for treating the electromagnetic phenomena of moving point charges in vacuum; however, for moving objects, the covariance of Maxwell's equations may not hold, and use of the MEs-f-MDMS may be required if the velocity is low. Finally, recent advances for treating the boundary conditions at the nanoscale without assuming an abrupt boundary are also reviewed.
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