首页> 外文会议> >Experimental design of spectroscopic measurements of microwave electric field in MTX tokamak plasma
【24h】

Experimental design of spectroscopic measurements of microwave electric field in MTX tokamak plasma

机译:MTX托卡马克等离子体中微波电场光谱测量的实验设计

获取原文

摘要

As part of the Microwave Tokamak Experiment (MTX), a method has been developed to measure the spatially resolved microwave electric field in plasmas. It combines laser-induced-fluorescence spectroscopy with a neutral particle beam (laser-aided particle probe spectroscopy). The RF electric field has been previously measured in small laboratory experiments. The MTX plasma, however, has a much higher density and temperature. One of the most difficult problems is to provide a sufficient density of the radiating atoms in the center of the (burned out) plasma. The authors propose that a sufficient density can be obtained with a small helium neutral-beam probe. A dye laser will be used to pump the helium atoms from the metastable level. The metastable helium atoms will be excited when they traverse a tiny metal-vapor chamber, or they will be produced by the collisional excitation in MTX plasma. The microwave electric field in the MTX plasma is expected to be several hundred kilovolts per centimeter. Therefore, the forbidden line will be strongly excited by the Stark effect. The intensity of the forbidden line emission will be measured to estimate the microwave electric field.
机译:作为微波托卡马克实验(MTX)的一部分,已开发出一种方法来测量等离子体中空间分辨的微波电场。它结合了激光诱导荧光光谱和中性粒子束(激光辅助粒子探针光谱)。先前已经在小型实验室实验中测量了RF电场。但是,MTX等离子体具有更高的密度和温度。最困难的问题之一是在(燃尽)等离子体的中心提供足够密度的辐射原子。作者建议,使用小型氦中性束探针可获得足够的密度。染料激光器将用于从亚稳能级泵浦氦原子。当亚稳氦原子穿过微小的金属蒸气室时,它们将被激发,或者由MTX等离子体中的碰撞激发产生。 MTX等离子体中的微波电场有望达到每厘米几百千伏。因此,斯塔克效应将强烈激发禁忌线。将测量禁线发射的强度,以估计微波电场。

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