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High power coaxial ubitron.

机译:大功率同轴泛子。

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摘要

In the ubitron, also known as the free electron laser, high power coherent radiation is generated from the interaction of an undulating electron beam with an electromagnetic signal and a static periodic magnetic wiggler field. These devices have experimentally produced high power spanning the microwave to x-ray regimes. Potential applications range from microwave radar to the study of solid state material properties. In this dissertation, the efficient production of high power microwaves (HPM) is investigated for a ubitron employing a coaxial circuit and wiggler. Designs for the particular applications of an advanced high gradient linear accelerator driver and a directed energy source are presented.; The coaxial ubitron is inherently suited for the production of HPM. It utilizes an annular electron beam to drive the low loss, RF breakdown resistant TE{dollar}sb{lcub}01{rcub}{dollar} mode of a large coaxial circuit. The device's large cross-sectional area greatly reduces RF wall heat loading and the current density loading at the cathode required to produce the moderate energy (500 keV) but high current (1-10 kA) annular electron beam. Focusing and wiggling of the beam is achieved using coaxial annular periodic permanent magnet (PPM) stacks without a solenoidal guide magnetic field. This wiggler configuration is compact, efficient and can propagate the multi-kiloampere electron beams required for many HPM applications.; The coaxial PPM ubitron in a traveling wave amplifier, cavity oscillator and klystron configuration is investigated using linear theory and simulation codes. A condition for the dc electron beam stability in the coaxial wiggler is derived and verified using the 2-1/2 dimensional particle-in-cell code, MAGIC. New linear theories for the cavity start-oscillation current and gain in a klystron are derived. A self-consistent nonlinear theory for the ubitron-TWT and a new nonlinear theory for the ubitron oscillator are presented. These form the basis for simulation codes which, along with MAGIC, are used to design a representative 200 MW, 40% efficient, X-band amplifier for linear accelerators and a 1 GW, 21% efficient, S-band oscillator for directed energy. The technique of axial mode profiling in the ubitron cavity oscillator is also proposed and shown to increase the simulated interaction efficiency to 46%. These devices are realizable and their experimental implementation, including electron beam formation and spurious mode suppression techniques, is discussed.
机译:在泛电子,也称为自由电子激光器中,高功率相干辐射是由起伏的电子束与电磁信号和静态周期性磁摆动场的相互作用产生的。这些设备实验性地产生了跨越微波到X射线范围的高功率。潜在的应用范围从微波雷达到固态材料特性的研究。本文研究了采用同轴电路和摆动器的泛子的高功率微波(HPM)的高效生产。提出了针对高级高梯度线性加速器驱动器和定向能源的特殊应用的设计。同轴泛素固有地适合于HPM的生产。它利用环形电子束来驱动大型同轴电路的低损耗,抗射频击穿的TE {dollar} sb {lcub} 01 {rcub} {dollar}模式。该器件的大截面积极大地降低了RF壁的热负荷以及产生中等能量(500 keV)但产生高电流(1-10 kA)环形电子束所需的阴极电流密度负荷。使用同轴环形环形永磁体(PPM)堆栈而没有电磁引导磁场,可以实现光束的聚焦和摆动。这种摆动器结构紧凑,高效,并且可以传播许多HPM应用所需的几千安培电子束。使用线性理论和仿真代码研究了行波放大器,腔振荡器和速调管配置中的同轴PPM泛子。使用2-1 / 2维单元内粒子代码MAGIC得出并验证了同轴摆动器中直流电子束稳定性的条件。推导了速调管中腔体开始振荡电流和增益的新线性理论。提出了一种用于泛子-TWT的自洽非线性理论和一种用于泛子振荡器的新的非线性理论。这些构成了仿真代码的基础,该仿真代码与MAGIC一起用于设计用于线性加速器的代表性200 MW,效率40%的X波段放大器和用于定向能量的1 GW,21%效率的S波段振荡器。还提出了泛子腔振荡器中的轴向模式分析技术,该技术显示出将模拟的交互效率提高到46%。这些器件是可实现的,并讨论了它们的实验实现,包括电子束形成和杂散模式抑制技术。

著录项

  • 作者

    Balkcum, Adam J.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Electronics and Electrical.; Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 190 p.
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;等离子体物理学;
  • 关键词

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