毛细管波导中加速电子束的倍频振荡特性研究

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, APPLIED Laser and Particle Beams Pub Date : 2021-01-30 DOI:10.1155/2021/6655499
M. Veysman
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引用次数: 0

摘要

研究结果表明,电子在毛细管狭窄波导中加速的动力学特性受到其参量激发的显著影响。一方面,这种激发会不可逆地破坏加速电子束的发射度,从而限制了它们实际应用的可能性。另一方面,控制参数激发的电子加速器振荡可以用来产生同步辐射的短脉冲源。分析了加速电子束和导向结构参数的不稳定区域及其对加速电子动力学的影响。对产生的同步辐射的参数也进行了估计。同步辐射光谱参数的测量可以作为诊断在参数共振情况下的电子加速器振荡及其激发的工具。
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On Peculiarities of Betatron Oscillations of Accelerated Electron Bunches in Capillary Waveguides
It is shown that the dynamics of electrons accelerated in narrow capillary waveguides is significantly influenced by the parametric excitation of their betatron oscillations. On the one hand, this excitation can irreversibly spoil the emittance of an accelerated electron bunch that limits the possibilities of their practical use. On the other hand, controlled parametric excitation of betatron oscillations can be used to generate short-pulse sources of synchrotron radiation. The article analyzes the regions of parametric instabilities, their dependence on the parameters of accelerated electron bunches and guiding structures, and their influence on the dynamics of accelerated electrons. The parameters of the generated synchrotron radiation are also estimated. Measurements of the spectral parameters of synchrotron radiation can serve as a tool for diagnostics of betatron oscillations and their excitation in the case of parametric resonances.
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来源期刊
Laser and Particle Beams
Laser and Particle Beams PHYSICS, APPLIED-
CiteScore
1.90
自引率
11.10%
发文量
25
审稿时长
1 months
期刊介绍: Laser and Particle Beams is an international journal which deals with basic physics issues of intense laser and particle beams, and the interaction of these beams with matter. Research on pulse power technology associated with beam generation is also of strong interest. Subjects covered include the physics of high energy densities; non-LTE phenomena; hot dense matter and related atomic, plasma and hydrodynamic physics and astrophysics; intense sources of coherent radiation; high current particle accelerators; beam-wave interaction; and pulsed power technology.
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