Full-Cycle Simulations of the Fermilab Booster

J. -F. OstiguyFermilab, Batavia, IL, USA, C. M. BhatFermilab, Batavia, IL, USA
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引用次数: 0

Abstract

The Proton Improvement Plan phase II (PIP-II) project currently under construction at FNAL will replace the existing 400 MeV normal conducting linac with a new 800 MeV superconducting linac. The beam power in the downstream rapid-cycling Booster synchrotron will be doubled by raising the machine cycle frequency from 15 to 20 Hz and by increasing the injected beam intensity by a factor 1.5. This has to be accomplished without raising uncontrolled losses beyond the administrative limit of 500 W. In addition, slip-stacking efficiency in the Recycler, the next machine in the accelerator chain, sets an upper limit on the longitudinal emittance of the beam delivered by the Booster. As part of an effort to better understand potential losses and emittance blow-up in the Booster, we have been conducting full cycle 6D simulations using the code PyORBIT. The simulations include space charge, wall impedance effects and transition crossing. In this paper, we discuss our experience with the code and present representative results for possible operational scenarios.
费米实验室助推器的全周期模拟
目前正在 FNAL 进行的质子改进计划第二阶段(PIP-II)项目将用一台新的 800 兆电子伏超导直列加速器取代现有的 400 兆电子伏普通直列加速器。通过将机器循环频率从 15 赫兹提高到 20 赫兹,并将注入光束强度提高 1.5 倍,下游快速循环增压同步加速器的光束功率将增加一倍。此外,加速器链中的下一个机器--回收器中的滑移叠加效率也为推进器提供的光束纵向发射率设定了上限。为了更好地了解增压器的潜在损耗和幅射爆炸,我们使用 PyORBIT 代码进行了全周期 6D 模拟。模拟包括空间电荷、壁面阻抗效应和过渡交叉。在本文中,我们讨论了使用该代码的经验,并介绍了可能的运行情况下的代表性结果。
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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