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Resolution of the Abraham-Minkowski controversy

机译:亚伯拉罕·米科夫斯基争议的解决

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The momentum of light inside ponderable media has an electromagnetic part and a mechanical part. The local and instantaneous density of the electromagnetic part of the momentum is given by the Poynting vector divided by the square of the speed of light in vacuum, irrespective of the nature of the electromagnetic fields or the local or global properties of the material media. The mechanical part of the momentum is associated with the action of the electromagnetic field on the atomic constituents of the media, as specified by the Lorentz law of force. Proper interpretation and application of the Maxwell-Lorentz equations within the material bodies as well as at their surfaces and interfaces is all that is needed to obtain a complete picture of the momentum of light, including detailed numerical values at each and every point in space and time. That the Abraham-Minkowski controversy surrounding the momentum of light inside material media has persisted for nearly a century is due perhaps to an insufficient appreciation for the completeness and consistency of the macroscopic Maxwell-Lorentz theory, inadequate treatment of the electromagnetic force and torque at the material boundaries, and an undue emphasis on the necessity of coupling the equations of electrodynamics to those of the theory of elasticity for proper treatment of mechanical momentum. The present paper reports the resolution of the Abraham-Minkowski controversy within the framework of the classical theory of electrodynamics, without resort to such complicating and ultimately unnecessary factors as pseudo-momentum, special surface forces, alternative energy-momentum tensors, and hidden momenta, that have caused so much confusion for such a long period of time.
机译:可思考的介质内部的光的动量具有电磁部分和机械部分。动量的电磁部分的局部和瞬时密度由Poynting向量除以真空中光速的平方得到,而与电磁场的性质或材料介质的局部或整体性质无关。动量的机械部分与电磁场对介质原子成分的作用有关,这是洛伦兹力定律所规定的。在材料主体以及它们的表面和界面中正确解释和应用Maxwell-Lorentz方程是获得完整的光动量图的必要条件,包括空间中每个点的详细数值以及时间。关于物质介质内部光动量的亚伯拉罕-米科夫斯基争论一直持续了近一个世纪,这可能是由于对宏观麦克斯韦-洛伦兹理论的完整性和连贯性认识不足,对电磁力和扭矩的处理不充分所致。物质边界,并过分强调将电动力学方程式与弹性理论的方程式耦合以适当处理机械动量的必要性。本文在经典的电动力学理论的框架内报告了亚伯拉罕-米科夫斯基争论的解决方案,而没有诉诸于诸如伪动量,特殊表面力,替代性能量动量张量和隐藏动量之类的复杂且最终不必要的因素,在这么长的时间里造成了很大的混乱。

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