基于夹持的高梯度射频照相枪新技术

D. Alesini, A. Battisti, M. Ferrario, L. Foggetta, V. Lollo, L. Ficcadenti, V. Pettinacci, S. Custodio, E. Pirez, P. Musumeci, L. Palumbo
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引用次数: 44

摘要

高梯度射频光枪是实现高质量电子束应用的关键技术。它们允许产生具有非常高的峰值电流和低横向发射度的光束,满足自由电子激光器,能量回收直线机,康普顿/汤姆森源和高能线性对撞机的严格要求。在本文中,我们介绍了最近在意大利弗拉斯卡蒂国家核物理研究所(LNF-INFN)实验室的SPARC_LAB光喷射器活动框架下开发的一种新型射频光子枪的设计。该设计从电磁角度实现了几个新功能,更重要的是,它的实现采用了一种不涉及任何钎焊过程的新技术。从电磁角度看,该枪具有高模分离、低光圈表面电场峰值和最小耦合器脉冲加热的特点。为了实现这一目标,我们实施了一种新颖的制造设计,避免了钎焊,大大降低了成本,实现时间和故障风险。本文详细讨论了在加州大学洛杉矶分校(UCLA)进行的电磁设计、低功率射频测量和高功率射频和波束测试。
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New technology based on clamping for high gradient radio frequency photogun
High gradient rf photoguns have been a key development to enable several applications of high quality electron beams. They allow the generation of beams with very high peak current and low transverse emittance, satisfying the tight demands for free-electron lasers, energy recovery linacs, Compton/Thomson sources and high-energy linear colliders. In the present paper we present the design of a new rf photogun recently developed in the framework of the SPARC_LAB photoinjector activities at the laboratories of the National Institute of Nuclear Physics in Frascati (LNF-INFN, Italy). This design implements several new features from the electromagnetic point of view and, more important, a novel technology for its realization that does not involve any brazing process. From the electromagnetic point of view the gun presents high mode separation, low peak surface electric field at the iris and minimized pulsed heating on the coupler. For the realization, we have implemented a novel fabrication design that, avoiding brazing, strongly reduces the cost, the realization time and the risk of failure. Details on the electromagnetic design, low power rf measurements and high power radiofrequency and beam tests performed at the University of California in Los Angeles (UCLA) are discussed in the paper.
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来源期刊
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3-8 weeks
期刊介绍: Physical Review Special Topics - Accelerators and Beams (PRST-AB), is a peer reviewed, purely electronic journal, distributed without charge to readers and funded by contributions from national laboratories. It covers the full range of accelerator science and technology: subsystem and component technologies, beam dynamics; accelerator applications; and design, operation, and improvement of accelerators used in science and industry. This includes accelerators for high-energy and nuclear physics, synchrotron radiation production, spallation neutron sources, medical therapy, and intense beam applications.
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