在圆柱漂移管中任意移动电荷的四向量势和电磁场的从头计算

K. Ilyenko, G. Gorbyk, T. Yatsenko
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引用次数: 2

摘要

利用Greenpsilas函数的方法,我们得到了在完美导电圆柱波导中沿任意路径运动的电荷的四向量势和电磁场分量。通过具有Dirichlet和Neumann边界条件的dpsilaAlembert算子的Greenpsilas函数解析表示了解。结果表明,如果波导仅受纵向电流密度分量和/或非零电荷密度(横向电流分量)的激励,则得到的解可简化为众所周知的TM (TE)圆柱波导模式的表达式。如果波导中同时存在横向和纵向电流密度分量以及非零电荷密度,则激发电磁场的径向结构与TM和TE圆柱波导模式叠加的径向结构一致。由此得到的结果允许人们直接计算作用于任意移动的相对论电荷的力,这些力来自于波导壁上的自激电荷和电流。它们也为解决考虑空间电荷效应的相对论电子束在圆柱漂移管中非稳态传播的严格自洽问题提供了基础。作为应用实例,我们在库仑规下,解析计算了由非相对论性点状电荷运动引起的圆柱形完全导电漂移管壁上感应电荷的标量势和密度。我们还发现了准静电力的潜在部分,施加在这种电荷上的准静电力是由它在漂移管壁上引起的电荷密度引起的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ab initio calculation of four-vector potential and electromagnetic field for a charge moving arbitrarily in a cylindrical drift tube
Using the method of Greenpsilas functions we found the four-vector potential and electromagnetic field components for a charge moving along an arbitrary path in a perfectly conducting cylindrical waveguide. Solutions are expressed analytically through Greenpsilas functions of the dpsilaAlembert operator with the Dirichlet and Neumann boundary conditions. It is shown that if the waveguide is excited only by a longitudinal current density component and/or non-zero charge density (transverse current components) the obtained solution reduces to the well-known expressions for TM (TE) cylindrical waveguide modes. If transverse and longitudinal current density components and non-zero charge density are present simultaneously in the waveguide, then the radial structure of the excited electro-magnetic field coincides with that of the superposition of TM and TE cylindrical waveguide modes. The results thus obtained allow one a direct calculation of the forces acting on an arbitrarily moving relativistic charge from the induced by-itself charges and currents at the waveguide walls. They also provide a basis for solution of a rigorous self-consistent problem on the non-stationary propagation of relativistic electron beams in cylindrical drift tubes with the account for space-charge effects. As an example of applications, under the Coulomb gauge, we analytically calculate the scalar potential and density of induced charge on the cylindrical perfectly conducting drift tube walls, which are caused by a moving non-relativistic point-like charge. We also find the potential part of the quasi-electrostatic force exerted on such a charge by the charge density induced by it on the drift tube walls.
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