欧洲核子研究中心 PS 阻抗模型和大型强子对撞机注入器升级项目后的不稳定性模拟的最新进展

S. Joly, A. Oeftiger, G. Iadarola, C. Zannini, M. Migliorati, N. Mounet, B. Salvant
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引用次数: 0

摘要

欧洲核子研究中心质子同步加速器(PS)的横向不稳定性增长率研究得益于最近更新的机器阻抗模型。利用该模型,我们采用一种非常适合于切割短波的新方法进行了大粒子跟踪模拟,其性能与最初实施的方法相当,同时所需的切片数量减少了 5 到 10 倍。此外,还开展了专门的基于波束的测量活动,以对阻抗模型进行基准测试。到目前为止,基于该模型的光束动力学模拟低估了注入能量时的不稳定性增长率。由于最近在阻抗模型中增加了踢脚磁铁的连接电缆及其外部电路,即使忽略空间电荷力的影响,模拟的不稳定性增长率也能与测量值相媲美。最后,在模拟中加入了空间电荷力,并研究了其对不稳定增长率和束内运动的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent advances in the CERN PS impedance model and instability simulations following the LHC Injectors Upgrade project
Transverse instability growth rates in the CERN Proton Synchrotron (PS) are studied thanks to the recently updated impedance model of the machine. Using this model, macroparticle tracking simulations were performed with a new method well-suited for the slicing of short wakes, which achieves comparable performance to the originally implemented method while reducing the required number of slices by a factor of 5 to 10. Furthermore, dedicated beam-based measurement campaigns were carried out to benchmark the impedance model. Until now, beam dynamics simulations based on this model underestimated instability growth rates at injection energy. Thanks to a recent addition to the impedance model, namely the kicker magnets' connecting cables and their external circuits, the simulated instability growth rates are now comparable to the measured ones even when neglecting the impact of the space charge force. Finally, the space charge force is included in simulations and its impact on the instability growth rate and intra-bunch motion is studied.
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