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Study of a non-equilibrium plasma pinch with application for microwave generation.

机译:非平衡等离子体收缩的研究及其在微波产生中的应用。

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摘要

The Non-Equilibrium Plasma Pinch (NEPP), also known as the Dense Plasma Focus (DPF) is well known as a source of energetic ions, relativistic electrons and neutrons as well as electromagnetic radiation extending from the infrared to X-ray. In this dissertation, the operation of a 15 kJ, Mather type, NEPP machine is studied in detail. A large number of experiments are carried out to tune the machine parameters for best performance using helium and hydrogen as filling gases. The NEPP machine is modified to be able to extract the copious number of electrons generated at the pinch. A hollow anode with small hole at the flat end, and a mock magnetron without biasing magnetic field are built. The electrons generated at the pinch are very difficult to capture, therefore a novel device is built to capture and transport the electrons from the pinch to the magnetron. The novel cup-rod-needle device successfully serves the purpose to capture and transport electrons to monitor the pinch current. Further, the device has the potential to field emit charges from its needle end acting as a pulsed electron source for other devices such as the magnetron. Diagnostics tools are designed, modeled, built, calibrated, and implemented in the machine to measure the pinch dynamics. A novel, UNLV patented electromagnetic dot sensors are successfully calibrated, and implemented in the machine. A new calibration technique is developed and test stands designed and built to measure the dot's ability to track the impetus signal over its dynamic range starting and ending in the noise region. The patented EM-dot sensor shows superior performance over traditional electromagnetic sensors, such as Rogowski coils. On the other hand, the cup-rod structure, when grounded on the rod side, serves as a diagnostic tool to monitor the pinch current by sampling the actual current, a quantity that has been always very challenging to measure without perturbing the pinch. To the best of our knowledge, this method of measuring the pinch current is unique and has never been done before. Agreement with other models is shown. The operation of the NEPP machine with the hole in the center of the anode and the magnetron connected including the cup-rod structure is examined against the NEPP machine signature with solid anode. Both cases showed excellent agreement. This suggests that the existence of the hole and the diagnostic tool inside the anode have negligible effects on the pinch.
机译:非平衡等离子体收缩(NEPP),也称为密集等离子体聚焦(DPF),众所周知是高能离子,相对论电子和中子以及从红外到X射线的电磁辐射的来源。本文详细研究了15 kJ Mather型NEPP机器的操作。使用氦气和氢气作为填充气体,进行了大量实验以调整机器参数以获得最佳性能。对NEPP机器进行了修改,使其能够提取出在收缩处产生的大量电子。建造了一个空心阳极,该阳极的扁平端有一个小孔,而一个模拟磁控管则没有偏置磁场。在收缩处产生的电子很难捕获,因此建立了一种新颖的装置来捕获电子并将其从收缩处传输到磁控管。新颖的杯杆式针头装置成功地用于捕获和传输电子以监控收缩电流的目的。此外,该装置具有从其针端场发射电荷的潜力,该电荷端用作诸如磁控管之类的其他装置的脉冲电子源。诊断工具可以在机器中进行设计,建模,构建,校准和实施,以测量收缩动态。一种新颖的,已获得UNLV专利的电磁点传感器已成功校准并在机器中实现。开发了一种新的校准技术,并设计并建造了测试台,以测量点在其动态范围内(从噪声区域开始和结束)跟踪动力信号的能力。获得专利的EM点传感器显示出优于传统电磁传感器(如Rogowski线圈)的性能。另一方面,杯杆结构在杆侧接地时,可以作为诊断工具,通过对实际电流进行采样来监视夹点电流,在不干扰夹点的情况下进行测量一直很困难。据我们所知,这种测量夹点电流的方法是独一无二的,以前从未有过。显示与其他模型的一致性。将NEPP机器的操作与阳极中心处的孔和连接的磁控管(包括杯杆结构)进行比较,以检查NEPP机器具有固体阳极的特征。两种情况均显示出极好的一致性。这表明阳极内部的孔和诊断工具的存在对收缩的影响可忽略不计。

著录项

  • 作者

    Al Agry, Ahmad Farouk.;

  • 作者单位

    University of Nevada, Las Vegas.;

  • 授予单位 University of Nevada, Las Vegas.;
  • 学科 Engineering Electronics and Electrical.;Physics Fluid and Plasma.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 360 p.
  • 总页数 360
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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