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Generalized 3D beam dynamics model for industrial traveling wave linacs design and simulations

机译:工业行波直线加速器设计和仿真的通用3D光束动力学模型

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Beam dynamics simulations in traveling wave (TW) accelerating structures with significant beam loading is a challenging problem. Some codes are capable of calculating the TW electromagnetic fields, and some can track particles through such fields, but most cannot treat both self-consistently. A few commercial codes can model the physics correctly at the expense of many processor-hour computations to obtain converged self-consistent solutions. However, simple, accurate equations of motion for intensive beam dynamics in TW accelerating structure analysis have been previously obtained by Masunov and subsequently implemented in the Hellweg code, which was developed at the Moscow Engineering-Physics Institute. Hellweg is based on equations that allow fast simulations of beam dynamics while taking into account such effects as beam loading, space charge, and external magnetic fields. In this paper, we describe in detail some recent improvements to the Hellweg physics kernel. We have generalized the Masunov results into a 3D set of equations of motion, which include all spatial components of the radiofrequency (RF) and external magnetic fields. We have also improved the Lapostolle space charge model to the general 3D ellipsoid form for any dimensions’ ratio, consideration for the particles outside the beam core, and the fields from the neighboring bunches that can exist in the real machine. These modifications allow approaching the Hellweg accuracy to the self-consistent commercial codes while keeping the simulation time short, which is essential during the linac design and optimization stage. The implementation of these new capabilities in Hellweg is carefully benchmarked against other codes and analytical calculations. The code is freely available with an open source license.
机译:光束载荷很大的行波(TW)加速结构中的光束动力学仿真是一个具有挑战性的问题。一些代码能够计算TW电磁场,一些代码可以通过此类场跟踪粒子,但是大多数不能自洽地对待这两个磁场。一些商业代码可以以花费大量处理器小时计算为代价来正确地对物理模型进行建模,以获得收敛的自洽解。但是,马苏诺夫先前已经获得了TW加速结构分析中用于强光束动力学的简单,准确的运动方程,随后又由莫斯科工程物理研究所开发的Hellweg代码实现了。 Hellweg基于方程,可以快速模拟束动力学,同时考虑到束载荷,空间电荷和外部磁场等影响。在本文中,我们详细描述了Hellweg物理内核的一些最新改进。我们已将Masunov结果概括为3D运动方程组,其中包括射频(RF)和外部磁场的所有空间分量。我们还将Lapostolle空间电荷模型改进为通用的3D椭圆体形式,以适应任何尺寸比率,考虑到束核外部的粒子以及真实机器中可能存在的相邻束的场。这些修改允许在保持仿真时间短的同时,使Hellweg精度达到自洽的商业代码,这在直线加速器设计和优化阶段至关重要。这些新功能在Hellweg中的实现已与其他代码和分析计算进行了仔细的基准测试。该代码可通过开放源代码许可证免费获得。

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