D'Arcy R, Aschikhin A, Bohlen S, Boyle G, Brümmer T, Chappell J, Diederichs S, Foster B, Garland M J, Goldberg L, Gonzalez P, Karstensen S, Knetsch A, Kuang P, Libov V, Ludwig K, Martinez de la Ossa A, Marutzky F, Meisel M, Mehrling T J, Niknejadi P, Põder K, Pourmoussavi P, Quast M, Röckemann J-H, Schaper L, Schmidt B, Schröder S, Schwinkendorf J-P, Sheeran B, Tauscher G, Wesch S, Wing M, Winkler P, Zeng M, Osterhoff J
1 Deutsches Elektronen-Synchrotron DESY , Notkestraße 85 , 22607 Hamburg , Germany.
2 Universität Hamburg , Luruper Chaussee 149 , 22761 Hamburg , Germany.
Philos Trans A Math Phys Eng Sci. 2019 Aug 12;377(2151):20180392. doi: 10.1098/rsta.2018.0392. Epub 2019 Jun 24.
The FLASHForward experimental facility is a high-performance test-bed for precision plasma wakefield research, aiming to accelerate high-quality electron beams to GeV-levels in a few centimetres of ionized gas. The plasma is created by ionizing gas in a gas cell either by a high-voltage discharge or a high-intensity laser pulse. The electrons to be accelerated will either be injected internally from the plasma background or externally from the FLASH superconducting RF front end. In both cases, the wakefield will be driven by electron beams provided by the FLASH gun and linac modules operating with a 10 Hz macro-pulse structure, generating 1.25 GeV, 1 nC electron bunches at up to 3 MHz micro-pulse repetition rates. At full capacity, this FLASH bunch-train structure corresponds to 30 kW of average power, orders of magnitude higher than drivers available to other state-of-the-art LWFA and PWFA experiments. This high-power functionality means FLASHForward is the only plasma wakefield facility in the world with the immediate capability to develop, explore and benchmark high-average-power plasma wakefield research essential for next-generation facilities. The operational parameters and technical highlights of the experiment are discussed, as well as the scientific goals and high-average-power outlook. This article is part of the Theo Murphy meeting issue 'Directions in particle beam-driven plasma wakefield acceleration'.
“向前闪”实验装置是用于精密等离子体尾场研究的高性能试验台,旨在在几厘米长的电离气体中将高质量电子束加速到吉电子伏特能级。等离子体通过气体池中的气体电离产生,电离方式可以是高压放电或高强度激光脉冲。待加速的电子既可以从等离子体背景内部注入,也可以从“向前闪”超导射频前端外部注入。在这两种情况下,尾场将由“向前闪”枪和直线加速器模块提供的电子束驱动,这些模块以10赫兹的宏脉冲结构运行,以高达3兆赫兹的微脉冲重复频率产生1.25吉电子伏特、1纳库的电子束团。满负荷运行时,这种“向前闪”束团序列结构对应的平均功率为30千瓦,比其他先进的激光尾波场加速(LWFA)和等离子体尾波场加速(PWFA)实验所用的驱动源高出几个数量级。这种高功率功能意味着“向前闪”是世界上唯一能够立即开展、探索和评估对下一代装置至关重要的高平均功率等离子体尾场研究的等离子体尾场装置。本文讨论了该实验的运行参数、技术亮点以及科学目标和高平均功率前景。本文是西奥·墨菲会议特刊“粒子束驱动等离子体尾场加速的发展方向”的一部分。