用Panofsky-Wenzel定理分析射频偏转器

M. J. Browman
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引用次数: 24

摘要

在1956年的一篇论文中,Panofsky和Wenzel考虑了在TE模式(没有电场分量平行于轴)或TM模式(没有磁场分量平行于轴)激励下平行于空腔轴线运动的快速粒子的横向动量。本文的一个结论是,在TE模式下,电场的偏转脉冲正好抵消了磁场的脉冲。这个结果有时被误解为如果作用在粒子上的电场纯粹是横向的,那么来自电场和磁场的偏转脉冲必须相互抵消。这个结论是错误的。相反,p/spl perp/=(espl ω ω 0/)/spl intsup dsub 0/(-i)/spl nablaspl perp/E/sub z/dz,在1956年的论文中隐式导出,是偏转空腔定理的一个更有用的形式。式中,p/spl perp/为传递给粒子的横向动量,d为空腔的长度,e为粒子的电荷,/spl ω - 0/为空腔的角频率,/spl ω - 0/ e /sub - z/为电场沿粒子路径的z分量的横向梯度。-i表示被积体相对于电场的90/spl度/相位推进。换句话说,被积函数与磁场具有相同的相位。Eq.(1)不局限于TE或TM模式。特别是,它适用于为洛斯阿拉莫斯国家实验室的加速器废物嬗变(ATW)项目研究的高能偏转器中的两个相似模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using the Panofsky-Wenzel theorem in the analysis of radio-frequency deflectors
In a 1956 paper Panofsky and Wenzel considered the transverse momentum imparted to a fast particle moving parallel to the-axis of a cavity excited in either a TE (no component of the electric field parallel to the axis) or TM mode (no component of the magnetic field parallel to the axis). One conclusion of this paper was that in a TE mode the deflecting impulse of the electric field exactly cancels the impulse of the magnetic field. This result is sometimes misinterpreted as concluding that if the electric field acting on a particle is purely transverse, the deflection impulses from the electric and magnetic fields must cancel one another. This conclusion is false. Instead p/spl perp/=(espl omegasub 0/)/spl intsup dsub 0/(-i)/spl nablaspl perp/E/sub z/dz, implicitly derived in the 1956 paper, is a more useful form of the theorem for deflecting cavities. In this equation, p/spl perp/ is the transverse momentum imparted to the particle, d is the length of the cavity, e is the charge of the particle, /spl omegasub 0/ is the angular frequency of the cavity, and /spl nablaspl perp/E/sub z/, is the transverse gradient of the z component of the electric field along the path of the particle. The -i represents a 90/spl deg/ phase advance of the integrand with respect to the electric field. In other words, the integrand has the same phase as the magnetic field. Eq. (1) is not restricted to TE or TM modes. In particular, it applies to two similar-looking modes in a high-energy deflector that was studied for the Accelerator Transmutation of Waste (ATW) project at Los Alamos National Laboratory.<>
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