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Implementation of Radio-Frequency Deflecting Devices for Comprehensive High-Energy Electron Beam Diagnosis

机译:高频偏转装置用于高能电子束综合诊断的实现

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摘要

In next-generation light sources, high-brightness electron beams are used in a free-electron laser configuration to produce light for use by scientists and engineers in numerous fields of research. High-brightness beams are described for such light sources as having low transverse and longitudinal emittances, high peak currents, and low slice emittance and energy spread. The optimal generation and preservation of such high-brightness electron beams during the acceleration process and propagation to and through the photon-producing element is imperative to the quality and performance of the light source. To understand the electron beam's phase space in the accelerating section of a next-generation light source machine, we employed radio-frequency cavities operating in a deflecting mode in conjunction with a magnetic spectrometer and imaging system for both low (250 MeV) and high (1.2 GeV) electron energies. This high-resolution, high-energy system is an essential diagnostic for the optimization and control of the electron beam in the FERMI light source generating fully transversely and longitudinally coherent light in the VUV to soft x-ray wavelength regimes. This device is located at the end of the linear accelerator in order to provide the longitudinal phase space nearest to the entrance of the photon-producing beam-lines. Here, we describe the design, fabrication, characterization, commissioning, and operational implementation of this transverse deflecting cavity structure diagnostic system for the high-energy (1.2 GeV) regime.
机译:在下一代光源中,高亮度电子束用于自由电子激光配置中以产生光,供科学家和工程师在众多研究领域中使用。描述了用于这样的光源的高亮度光束,该光源具有低的横向和纵向发射率,高的峰值电流以及低的切片发射率和能量散布。这种高亮度电子束在加速过程中以及在光子产生元件中的传播以及通过光子产生元件的传播过程中的最佳产生和保存,对光源的质量和性能至关重要。为了了解下一代光源机器加速部分中电子束的相空间,我们采用了以偏转模式工作的射频腔以及电磁光谱仪和成像系统,用于低(250 MeV)和高( 1.2 GeV)电子能量。这个高分辨率,高能量的系统对于FERMI光源中电子束的优化和控制是必不可少的诊断,该FERMI光源可在VUV到软X射线波长范围内产生完全横向和纵向相干的光。该装置位于线性加速器的末端,以便提供最接近产生光子的光束线入口的纵向相空间。在这里,我们描述了这种针对高能(1.2 GeV)方案的横向偏转腔结构诊断系统的设计,制造,表征,调试和操作实施。

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