期刊文献+

Formation of Multicharged Metal Ions in Vacuum Arc Plasma Heated by Gyrotron Radiation 被引量:1

Formation of Multicharged Metal Ions in Vacuum Arc Plasma Heated by Gyrotron Radiation
在线阅读 下载PDF
导出
摘要 A new method for the generation of high charged state metal ion beams is developed. This method is based on microwave heating of vacuum arc plasma in a magnetic trap under electron cyclotron resonance (ECR) conditions. Two gyrotrons for plasma heating were used, which were with the following parameters. The first is with a wave frequency of 37.5 GHz, a pulse duration of 1 ms and power of 100 kW, another is with 75 GHz, 0.15 ms and 400 kW. Two different magnetic traps were considered for vacuum arc plasma confinement. The first one is a simple mirror trap. Such system was already investigated and could provide high charge state ions. The second trap was with a cusp magnetic field configuration with native "minimum-B" field structure. Two different ways of metal plasma injection into the magnetic trap were used. The first one is an axial injection from an arc source located out of the trap, and the second is a radial injection from four arc sources mounted at the center of the trap. Both traps provide up to 200 eMA of ion beam current for platinum ions with highest charge state 10+. Ion beams were successfully extracted from the plasma and accelerated by a voltage of up to 20 kV. A new method for the generation of high charged state metal ion beams is developed. This method is based on microwave heating of vacuum arc plasma in a magnetic trap under electron cyclotron resonance (ECR) conditions. Two gyrotrons for plasma heating were used, which were with the following parameters. The first is with a wave frequency of 37.5 GHz, a pulse duration of 1 ms and power of 100 kW, another is with 75 GHz, 0.15 ms and 400 kW. Two different magnetic traps were considered for vacuum arc plasma confinement. The first one is a simple mirror trap. Such system was already investigated and could provide high charge state ions. The second trap was with a cusp magnetic field configuration with native "minimum-B" field structure. Two different ways of metal plasma injection into the magnetic trap were used. The first one is an axial injection from an arc source located out of the trap, and the second is a radial injection from four arc sources mounted at the center of the trap. Both traps provide up to 200 eMA of ion beam current for platinum ions with highest charge state 10+. Ion beams were successfully extracted from the plasma and accelerated by a voltage of up to 20 kV.
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2011年第5期596-599,共4页 等离子体科学和技术(英文版)
基金 supported by the Russian Foundation for Basic Research (grant #11-08-00259) by the Ministry of Education and Science of theRussian Federation (state contract No. 14.740.11.1333)
关键词 ion source ECR heating vacuum arc multicharged ions ion source, ECR heating, vacuum arc, multicharged ions
  • 相关文献

参考文献18

  • 1Thuillier T, Bouly J, Curdy J, et al. 2002, New Xenon Results of PHOENIX at 28 GHz. Proceedings of 15th Int. Workshop on ECR Ion Sources, Department of Physics, University of Juvaskyla, Finland. p.13.
  • 2Mesyats G A, Barengolts S A. 2002, Uspekh. Fiz. Nauk, 172:1113.
  • 3Oks E M. 2002, IEEE Trans. Plasma Sci., 30:202.
  • 4Batalin V A, Bugaev A S, Gushenets V I, et al. 2002, J. Appl. Phys., 92:2884.
  • 5Yushkov G Yu, Anders A. 2009, J. Appl. Phys., 105: 043303.
  • 6Vodopyanov A V, Golubev S V, Khizhnyak V I, et al. 2008, Rev. Sci. Instrum., 79:02B304.
  • 7Vodopyanov A V, Golubev S V, Mansfeld D A, et al. 2007, Tech. Phys. Lett., 33:872.
  • 8Vodopyanov A V, Golubev S V, Mansfeld D A, et al. 2005, Tech. Phys., 50:1207.
  • 9Vodopyanov A V, Golubev S V, Zorin V G, et al. 2004, Rev. Sci. Instrum., 75:1888.
  • 10Nikolaev A G, Oks E M, Savkin K P, et al. 2005, Patent RU 48105 U1.

同被引文献9

引证文献1

二级引证文献4

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部