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Design and commissioning of a 16.1 MHz multiharmonic buncher for the reaccelerator at NSCL.

机译:用于NSCL重新加速器的16.1 MHz多谐波成束器的设计和调试。

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摘要

The ReAccelerator (ReA) linear accelerator facility at the National Superconducting Cyclotron Laboratory is a unique resource for the nuclear physics community. The particle fragmentation beam production technique, combined with the ability to stop and then reaccelerate the beam to energies of astrophysical interest, give experimenters an unprecedented range of rare isotopes at energies of nuclear and astrophysical interest. The ReAccelerator also functions as a testbed for technology to be incorporated in the upcoming Facility for Rare Isotope Beams linear accelerator, which will eventually in turn become the beam source for ReA.;This prototype nature of the ReAccelerator, however, dictated some design choices which have resulted in a final beam with a time structure that is less than ideal for certain classes of experiments. The cavities and RFQ used in ReA have an operating frequency of 80.5 MHz, which corresponds to a separation between particle bunches at the detectors of 12.4 ns. While this separation is acceptable for many experiments, sensitive time of flight measurements require a greater separation between pulses. As nuclear physics experiments rely on statistics, a solution to increasing bunch separation without simply discarding a large fraction of the beam particles was desired.;This document describes the design and construction of such a device, a 16.1 MHz multiharmonic buncher. The first chapter provides backgound information on the NSCL and ReA, and some basic concepts in accelerator physics to lay the groundwork for the project.Next, more specifics are provided on the time structure of accelerated beams, and the experimental motivation for greater separation. The third chapter outlines the basic principles of multiharmonic bunching.;In order to evaluate the feasibility of any buncher design, the exact acceptance of the Radiofrequency Quadrupole (RFQ) of the ReAccelerator needed to be empirically measured. Chapter 4 describes the results of that measurement. Chapter 5 outlines the simulations and calculations that went into the design choices for this particular buncher, incorporating the results of the RFQ measurements. The next two chapters describe the construction, installation, and testing of the device, and give experimental results. Finally, Chapter 8 summarizes the project and the final steps which need to be undertaken to make the device a simple to use asset for future experimentalists at ReA.
机译:国家超导回旋加速器实验室的ReAccelerator(ReA)线性加速器设施是核物理学界的独特资源。粒子碎裂束产生技术,再加上束流停止然后再加速到天文学感兴趣的能量的能力,为实验人员提供了前所未有的稀有同位素范围的核和天文学感兴趣的能量。 ReAccelerator还可以用作即将在即将到来的稀有同位素束线性加速器中集成的技术的试验平台,而该装置最终将成为ReA的束源。然而,ReAccelerator的这种原型性质决定了一些设计选择导致最终光束的时间结构对于某些类型的实验而言并不理想。 ReA中使用的空腔和RFQ的工作频率为80.5 MHz,这对应于探测器处粒子束之间的间隔为12.4 ns。尽管这种间隔对于许多实验是可以接受的,但敏感的飞行时间测量要求在脉冲之间进行更大的间隔。由于核物理实验依赖于统计数据,因此需要一种在不简单地丢弃大部分光束粒子的情况下增加束间距的解决方案。该文件描述了16.1 MHz多谐波束聚器这种设备的设计和构造。第一章提供了有关NSCL和ReA的背景信息,以及加速器物理学的一些基本概念,为该项目奠定了基础。接着,提供了有关加速束的时间结构以及进一步分离的实验动机的更多细节。第三章概述了多谐波成束的基本原理。为了评估任何成束器设计的可行性,必须凭经验测量ReAccelerator的射频四极杆(RFQ)的准确接受度。第4章介绍了该测量的结果。第5章概述了针对特定聚束器的设计选择的仿真和计算,并结合了RFQ测量的结果。接下来的两章介绍了该设备的构造,安装和测试,并提供了实验结果。最后,第8章总结了该项目以及使该设备成为ReA未来实验人员易于使用的资产所需采取的最终步骤。

著录项

  • 作者

    Alt, Daniel Maloney.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 High energy physics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 216 p.
  • 总页数 216
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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