...
首页> 外文期刊>Physics of plasmas >Use of a radial self-field diode geometry for intense pulsed ion beam generation at 6 MeV on Hermes III
【24h】

Use of a radial self-field diode geometry for intense pulsed ion beam generation at 6 MeV on Hermes III

机译:使用径向自场二极管几何形状在Hermes III上产生6 MeV的强脉冲离子束

获取原文
获取原文并翻译 | 示例

摘要

We investigate the generation of intense pulsed focused ion beams at the 6 MeV level using an inductive voltage adder (IVA) pulsed-power generator, which employs a magnetically insulated transmission line (MITL). Such IVA machines typical run at an impedance of few tens of Ohms. Previous successful intense ion beam generation experiments have often featured an "axial" pinch-reflex ion diode (i.e., with an axial anode-cathode gap) and operated on a conventional Marx generator/water line driver with an impedance of a few Ohms and no need for an MITL. The goals of these experiments are to develop a pinch-reflex ion diode geometry that has an impedance to efficiently match to an IVA, produces a reasonably high ion current fraction, captures the vacuum electron current flowing forward in the MITL, and focuses the resulting ion beam to small spot size. A new "radial" pinch-reflex ion diode (i.e., with a radial anode-cathode gap) is found to best demonstrate these properties. Operation in both positive and negative polarities was undertaken, although the negative polarity experiments are emphasized. Particle-in-cell (PIC) simulations are consistent with experimental results indicating that, for diode impedances less than the self-limited impedance of the MITL, almost all of the forward-going IVA vacuum electron flow current is incorporated into the diode current. PIC results also provide understanding of the diode-impedance and ion-focusing properties of the diode. In addition, a substantial high-energy ion population is also identified propagating in the "reverse" direction, i.e., from the back side of the anode foil in the electron beam dump. (C) 2014 AIP Publishing LLC.
机译:我们使用感应电压加法器(IVA)脉冲功率发生器研究了6 MeV强度的强脉冲聚焦离子束的产生,该发生器采用了磁绝缘传输线(MITL)。这样的IVA机器通常以几十欧姆的阻抗运行。先前成功的强离子束生成实验通常采用“轴向”捏合反射离子二极管(即具有轴向阳极-阴极间隙),并在阻抗为几欧姆且没有电阻的常规马克思发生器/水线驱动器上运行需要一个MITL。这些实验的目的是开发一种夹捏反射式离子二极管几何形状,该几何形状具有与IVA有效匹配的阻抗,产生相当高的离子电流分数,捕获在MITL中向前流动的真空电子电流并聚焦所产生的离子光束到小光斑尺寸。发现一种新的“径向”收缩反射离子二极管(即,具有径向阳极-阴极间隙)可以最好地证明这些特性。尽管强调了负极性实验,但仍进行了正极性和负极性操作。单元中的粒子(PIC)模拟与实验结果一致,该实验结果表明,对于小于MITL自限阻抗的二极管阻抗,几乎所有前进的IVA真空电子流电流都被并入了二极管电流。 PIC结果还提供了对二极管的二极管阻抗和离子聚焦特性的了解。另外,还确认到大量高能离子在“反向”方向上传播,即从电子束收集器中阳极箔的背面传播。 (C)2014 AIP Publishing LLC。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号