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Enhanced quasi-static particle-in-cell simulation of electron cloud instabilities in circular accelerators.

机译:圆形加速器中电子云不稳定性的增强的准静态单元内粒子模拟。

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摘要

Electron cloud instabilities have been observed in many circular accelerators around the world and raised concerns of future accelerators and possible upgrades. In this thesis, the electron cloud instabilities are studied with the quasi-static particle-in-cell (PIC) code QuickPIC.;Modeling in three-dimensions the long timescale propagation of beam in electron clouds in circular accelerators requires faster and more efficient simulation codes. Thousands of processors are easily available for parallel computations. However, it is not straightforward to increase the effective speed of the simulation by running the same problem size on an increasingly number of processors because there is a limit to domain size in the decomposition of the two-dimensional part of the code. A pipelining algorithm applied on the fully parallelized particle-in-cell code QuickPIC is implemented to overcome this limit. The pipelining algorithm uses multiple groups of processors and optimizes the job allocation on the processors in parallel computing. With this novel algorithm, it is possible to use on the order of 102 processors, and to expand the scale and the speed of the simulation with QuickPIC by a similar factor.;In addition to the efficiency improvement with the pipelining algorithm, the fidelity of QuickPIC is enhanced by adding two physics models, the beam space charge effect and the dispersion effect.;Simulation of two specific circular machines is performed with the enhanced QuickPIC.;First, the proposed upgrade to the Fermilab Main Injector is studied with an eye upon guiding the design of the upgrade and code validation. Moderate emittance growth is observed for the upgrade of increasing the bunch population by 5 times. But the simulation also shows that increasing the beam energy from 8GeV to 20GeV or above can effectively limit the emittance growth.;Then the enhanced QuickPIC is used to simulate the electron cloud effect on electron beam in the Cornell Energy Recovery Linac (ERL) due to extremely small emittance and high peak currents anticipated in the machine. A tune shift is discovered from the simulation; however, emittance growth of the electron beam in electron cloud is not observed for ERL parameters.
机译:在世界各地的许多圆形加速器中都观察到电子云的不稳定性,并引起了对未来加速器和可能升级的担忧。本文利用准静态粒子内PIC(QuickPIC)代码研究了电子云的不稳定性。在三维模型中,圆形加速器中电子云在电子云中的长时程传播需要更快,更有效的仿真代码。成千上万的处理器可轻松用于并行计算。但是,通过在越来越多的处理器上运行相同的问题大小来提高仿真的有效速度并不容易,因为在代码的二维部分的分解中域大小受到限制。为克服此限制,实施了应用于完全并行化的单元格内粒子代码QuickPIC的流水线算法。流水线算法使用多组处理器,并在并行计算中优化处理器上的作业分配。借助这种新颖的算法,可以使用大约102个处理器,并通过类似的因素将QuickPIC的仿真规模和速度扩大。除了流水线算法的效率提高外,保真度也很高。通过添加两个物理模型(束空间电荷效应和色散效应)增强了QuickPIC 。;使用增强的QuickPIC对两个特定的圆形机器进行了模拟。首先,研究了建议的费米实验室主注入器的升级指导升级设计和代码验证。观察到适度的发射率增长,使团簇数量增加了5倍。但是仿真还表明,将束能量从8GeV增加到20GeV或更高可以有效地限制发射率的增长。然后,增强的QuickPIC用于模拟康奈尔能量回收直线加速器(ERL)对电子束的电子云效应,原因是机器中预计会有极小的发射率和高峰值电流。从仿真中发现音调偏移;但是,对于ERL参数,没有观察到电子云中电子束的发射率增长。

著录项

  • 作者

    Feng, Bing.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Physics Elementary Particles and High Energy.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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