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Global particle balance and wall recycling properties of long duration discharges on TRIAM-1M

机译:TRIAM-1M上长时间放电的整体颗粒平衡和壁回收特性

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摘要

The longest tokamak discharge, with a duration of 11 406 s (3 h 10 min), has been achieved. The global particle balance has been investigated. In the longest discharge, the global balance between the particle absorption and release of the wall was achieved at t ~ 30 min. After that, the plasma density was maintained by the recycling flux alone until the end of the discharge. The maximum wall inventory is about 3.6 * 10~(20) H at t ~ 30 min, but it is finally released from the wall at the end of the discharge. The hydrogen release seems to be caused by the temperature increase in the whole toroidal area of the main chamber. Moreover, it has been observed that there is a large difference between the properties of wall recycling in the continuous gas feed case (i.e. static condition) and in the additional gas puff case (i.e. dynamic condition). In the static condition, the effective particle confinement time increases to ~ 10 s during the 1 min discharge and it increases to ~ 100 s before the global balance in the longest discharge. In the dynamic condition, the decay time of the electron density just after the gas puff, i.e. the effective particle confinement time, is constant at 0.2-0.3 s during the discharge. The large difference in the effective particle confinement time between the static and dynamic conditions seems to be caused by the reduction in the recycling coefficient due to the enhanced wall pumping resulting from the additional gas puff.
机译:已实现最长的托卡马克放电,持续时间为11 406 s(3 h 10分钟)。已研究了全局粒子平衡。在最长的排放时间内,在t〜30 min时达到了颗粒吸收与释放之间的总体平衡。之后,仅通过再循环焊剂维持等离子体密度,直到放电结束。在t〜30 min时,最大的墙面存量约为3.6 * 10〜(20)H,但最终在放电结束时从墙面释放出来。氢气的释放似乎是由主腔室整个环形区域中温度的升高引起的。此外,已经观察到,在连续供气情况下(即静态)和在另外的吹气情况下(即动态条件),壁再循环的特性之间存在很大差异。在静态条件下,有效颗粒限制时间在放电1分钟期间增加到〜10 s,并在最长放电的全局平衡之前增加到〜100 s。在动态条件下,刚好在吹气之后电子密度的衰减时间,即有效的粒子约束时间,在放电期间恒定为0.2-0.3s。静态和动态条件之间有效颗粒限制时间的巨大差异似乎是由于回收系数的降低而引起的,这归因于由于额外的吹气而导致的壁泵的增加。

著录项

  • 来源
    《Nuclear fusion》 |2004年第7期|p. 693-698|共6页
  • 作者单位

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Advanced Fusion Research Center, Research Institute for Applied Mechanics, Kyushu University, Kasuga, Fukuoka, 816-8580, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 原子核物理学、高能物理学;
  • 关键词

  • 入库时间 2022-08-18 00:49:48

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