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Equilibrium and vertical-instability considerations for vertical strike-point shifts on the ITER divertor targets

机译:在ITER分流器目标上进行垂直打击点移动的平衡和垂直不稳定因素

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摘要

The study of operation with raised strike points on the first ITER divertor target plates is motivated by the need to gain experience with operation with strike points on tungsten (W) surfaces during the non-active phases (in the case of an initial carbon fibre composite (CFC)AV divertor); or (if ITER begins with a full-W divertor), to gain experience with plasma control and transients while operating with raised strike points to avoid damaging the baseline strike regions in preparation for the nuclear phase, and to provide a means for operation should damage occur in the baseline strike zone. For operation with raised strike points, we use the Corsica code to investigate the range of possible H- and L-mode equilibria, with emphasis on the maximum plasma current, achievable shapes, etc. With raised strike points the maximum achievable plasma current is close to 14 MA. The operating space (β_p - l_i) for raised strike points has been studied. The size of the β_p - l_i operating space shrinks (compared to using standard strike-point positions) at 14 MA. For 12 MA, however, the operating space is not affected when using raised strike points. For equilibria with elevated strike points (at roughly the CFC/W transitions, following the 2007 ITER Design Review) the vertical-instability growth-rates at high plasma current (14 MA) are somewhat high but are within the 20 s~(-1) which studies indicate are controllable in ITER. At lower currents (12 MA) in H-mode, the vertical-instability growth rates stay below 10.0 s~(-1) for most of /β_p - l_i space. At 12 MA in H-mode, multiple equilibria which meet our constraints have been found in overlapping regions of the β_p - l_i operating space.
机译:对第一个ITER偏滤器目标板上击点升高的操作进行研究的动机是,需要获得在非活性相期间在钨(W)表面进行击点操作的经验(对于初始碳纤维复合材料而言) (CFC)AV偏滤器);或(如果ITER以全W偏滤器开始),以获得在升高的打击点时进行等离子体控制和瞬变的经验,以避免损坏基线打击区域,以准备核阶段,并提供一种操作手段,以防损坏核发生在基线打击区。对于具有升高的触击点的操作,我们使用Corsica代码研究可能的H模式和L模式平衡的范围,重点是最大等离子体电流,可实现的形状等。在升高的触击点下,最大可实现的等离子体电流接近至14 MA。已经研究了升高的打击点的操作空间(β_p-l_i)。 β_p-l_i操作空间的大小在14 MA时会缩小(与使用标准罢工点位置相比)。但是,对于12 MA,使用升高的打击点时不会影响操作空间。对于具有升高的触击点的平衡点(大约在CFC / W过渡处,根据2007年ITER设计审查),在高等离子流(14 MA)下的垂直不稳定性增长率较高,但在20 s〜(-1 )哪些研究表明在ITER中是可控的。在H模式下,在较低的电流(12 MA)下,大多数/β_p-l_i空间的垂直不稳定性增长率保持在10.0 s〜(-1)以下。在H模式下的12 MA下,在β_p-l_i操作空间的重叠区域中发现了满足我们约束的多重平衡。

著录项

  • 来源
    《Nuclear fusion》 |2013年第8期|083021.1-083021.11|共11页
  • 作者单位

    Lawrence Livermore National Laboratory, Livermore, CA, USA;

    Lawrence Livermore National Laboratory, Livermore, CA, USA;

    Lawrence Livermore National Laboratory, Livermore, CA, USA;

    ITER Organization, Cadarache, France;

    ITER Organization, Cadarache, France;

  • 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
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  • 关键词

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