Manipulation and Wakefield Effects on Multi-Pulse Driver Beams in PWFA Injector Stages

Fabio Bosco, G. Andonian, O. Camacho, Martina Carillo, E. Chiadroni, A. Giribono, G. Lawler, N. Majernik, P. Manwani, M. Migliorati, A. Mostacci, L. Palumbo, G. J. Silvi, B. Spataro, C. Vaccarezza, M. Yadav, James Rosenzweig
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Abstract

Particle-driven plasma wakefield acceleration (PWFA) exploits the intense wakefields excited in a plasma by a high-brightness driver beam in order to accelerate a trailing, properly delayed witness electron beam. Such a configuration offers notable advantages in achieving very large accelerating gradients that are suitable for applications in particle colliders and photon production. Moreover, the amplitude of the accelerating fields can be enhanced by resonantly exciting the plasma using a multi-pulse driver beam with a proper time structure. Before the injection into the plasma stage, the pulsed electron beam, conventionally termed the comb beam, is usually produced and pre-accelerated in a radio-frequency (RF) linear accelerator (linac). In this pape, we discuss challenging aspects of the dynamics that comb beams encounter in the RF injector stage preceding the plasma. In particular, the examples we analyze focus on the use of velocity bunching to manipulate the time structure of the beam and the impact of dipole short-range wakefields on the transverse emittances. Indeed, both processes crucially affect the phase space distribution and its quality, which are determinant features for an efficient acceleration in the plasma. In addition, the analyses we present are performed with the custom tracking code MILES, which utilizes semi-analytical models for a simplified evaluation of wakefield effects in the presence of space charge forces.
PWFA 喷射器级多脉冲驱动光束的操纵和渚波效应
粒子驱动等离子体唤醒场加速(PWFA)利用高亮度驱动光束在等离子体中激发的强烈唤醒场来加速尾随的、适当延迟的见证电子束。这种配置在实现非常大的加速梯度方面具有显著优势,适合应用于粒子对撞机和光子生产。此外,通过使用具有适当时间结构的多脉冲驱动光束对等离子体进行共振激励,还可以增强加速场的振幅。在注入等离子体阶段之前,脉冲电子束(通常称为梳状束)通常在射频直线加速器(linac)中产生并预加速。在本论文中,我们将讨论梳状电子束在等离子体之前的射频注入阶段所遇到的动力学挑战。特别是,我们分析的例子侧重于利用速度束化来操纵光束的时间结构,以及偶极子短程唤醒场对横向发射的影响。事实上,这两个过程都会对相空间分布及其质量产生至关重要的影响,而相空间分布及其质量是等离子体中有效加速的决定性特征。此外,我们介绍的分析是通过定制跟踪代码 MILES 进行的,该代码利用半分析模型简化了空间电荷作用下的唤醒场效应评估。
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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