Design of an apparatus for optical and VUV spectroscopy of explosive emission processes

J. Parsony, J. Dickens, A. Neuber, J. Walter, J. Krile, J. Vara
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引用次数: 2

Abstract

This study focuses on the design of an experimental apparatus for optical and vacuum ultraviolet (VUV) spectroscopy of explosive emission processes at the cathode in a high power vacuum sealed tube. The system consists of a high power pulsed Nd:YAG laser with a highly tunable optical parametric oscillator (OPO, 200 to 2600 nm), a 300 kV, 80 J Marx Generator, and a triode-geometry vircator that is 6 inches in diameter and 11 inches in length. It has been observed that the explosive emission occurring at the cathode forms a plasma front propagating across the A-K gap negatively affecting the impedance of the gap thus shortening pulse length and spoiling the desired consistent low vacuum within the sealed tube. The scope of this project is to probe the plasma formed between the A-K gap to determine the species emitted off the cathode. The timing integration of each sub-system is very critical as the window for measurement is approximately 200 ns. A compact, fiber optically coupled, battery-operated, low jitter (500 ps), fast risetime (20 ns) pulse trigger generator has been designed and incorporated as the trigger source in a trigatron triggering scheme for the Marx generator. Preliminary jitter measurements of 20 to 30 ns have been seen on the fully erected Marx Generator. The intent of this paper is to discuss the details of the various sub-systems and the timing between them, enabling optical / VUV spectroscopic measurements of the explosive emission process.
爆炸发射过程光学和VUV光谱装置的设计
本文设计了一种高功率真空密封管阴极爆炸发射过程的光学和真空紫外光谱实验装置。该系统由一个高功率脉冲Nd:YAG激光器、一个高可调光学参量振荡器(OPO, 200 ~ 2600 nm)、一个300 kV、80 J的马克思发生器和一个直径6英寸、长11英寸的三极管振子组成。已经观察到,发生在阴极的爆炸发射形成了一个等离子体前沿,穿过a - k间隙传播,对间隙的阻抗产生负面影响,从而缩短脉冲长度,破坏了密封管内期望的一致的低真空。这个项目的范围是探测在A-K间隙之间形成的等离子体,以确定阴极发射的物种。各子系统的定时集成非常关键,因为测量窗口约为200ns。设计了一种紧凑、光纤耦合、电池供电、低抖动(500 ps)、快速上升时间(20 ns)的脉冲触发发生器,并将其作为触发源集成到马克思发生器的三管触发方案中。在完全竖立的马克思发电机上,初步的抖动测量值为20至30纳秒。本文的目的是讨论各个子系统的细节和它们之间的时序,使光学/ VUV光谱测量爆炸发射过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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