On Tomonaga’s theory of split-anode magnetrons

IF 0.8 4区 物理与天体物理 Q2 HISTORY & PHILOSOPHY OF SCIENCE
Walter Dittrich
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引用次数: 1

Abstract

This article offers a review of the history of radar research and its application in the 20th century. After describing the wartime work of Sin-Itiro Tomonaga and his theory of the cavity magnetron, we formulate the equations of motion of an electron in a cavity magnetron using action-angle variables. This means following the electron’s path on its way from a cylindrical cathode moving toward a co-axial cylindrical anode in presence of a uniform magnetic field parallel to the common axis. After analyzing the situation without coupling to an external oscillatory electric field, we employ methods of canonical perturbation theory to find the resonance condition between the frequencies of the free theory ω r , ω ? and the applied perturbing oscillatory frequency ω. A long-time averaging process will then eliminate the periodic terms in the equation for the now time-dependent action-angle variables. The terms that are no longer periodic will cause secular changes so that the canonical action-angle variables (J, δ) change in a way that the path of the electron will deform gradually so that it can reach the anode. How the ensemble of the initially randomly distributed electrons forms spokes and how their energy is conveyed to the cavity-field oscillation is the main focus of this article. Some remarks concerning the importance of results in QED and the invention of radar theory and application conclude the article.

论Tomonaga的分阳极磁控管理论
本文综述了20世纪以来雷达的研究历史及其应用。在描述了sini - itro Tomonaga的战时工作和他的腔磁控管理论之后,我们用作用角变量建立了电子在腔磁控管中的运动方程。这意味着在平行于公共轴的均匀磁场存在的情况下,跟随电子从圆柱形阴极向同轴圆柱形阳极运动的路径。在分析了与外部振荡电场不耦合的情况后,我们利用经典摄动理论的方法找到了自由理论ω r, ω ?外加扰动振荡频率ω。然后,一个长时间的平均过程将消除现在与时间相关的角度变量方程中的周期性项。不再是周期性的项将引起长期变化,因此规范作用角变量(J, δ)以电子路径逐渐变形的方式变化,以便它可以到达阳极。最初随机分布的电子的系综如何形成辐条以及它们的能量如何传递到腔场振荡是本文的主要焦点。最后,对QED结果的重要性以及雷达理论和应用的发明作了总结。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The European Physical Journal H
The European Physical Journal H HISTORY & PHILOSOPHY OF SCIENCE-PHYSICS, MULTIDISCIPLINARY
CiteScore
1.60
自引率
10.00%
发文量
13
审稿时长
>12 weeks
期刊介绍: The purpose of this journal is to catalyse, foster, and disseminate an awareness and understanding of the historical development of ideas in contemporary physics, and more generally, ideas about how Nature works. The scope explicitly includes: - Contributions addressing the history of physics and of physical ideas and concepts, the interplay of physics and mathematics as well as the natural sciences, and the history and philosophy of sciences, together with discussions of experimental ideas and designs - inasmuch as they clearly relate, and preferably add, to the understanding of modern physics. - Annotated and/or contextual translations of relevant foreign-language texts. - Careful characterisations of old and/or abandoned ideas including past mistakes and false leads, thereby helping working physicists to assess how compelling contemporary ideas may turn out to be in future, i.e. with hindsight.
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