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Sub-divertor fuel isotopic content detection limit for JET and its impact on ICRF core heating and DTE2 operation~a

机译:JET的分流器燃料同位素含量检测极限及其对ICRF堆芯加热和DTE2运行的影响〜a

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摘要

The ability to detect and control fuel isotopic content down to a 1% concentration level is greatly important for the upcoming JET DTE2 campaign, as well as its associated TT and DD phases. A reduction of H minority concentration even from 2% down to 1% is shown here to have significant impact on the effectiveness of ion cyclotron range of frequencies core heating, while the ability to maintain T or D concentration at or below 1% is critical to limiting fusion neutron generation in the DD and TT phases, correspondingly. The sub-divertor measurement of (global) isotopic concentration, based on Penning-activated optical spectroscopy, can deliver minimally this 1% detection for DTE2 as long as light collection from the Penning emission can be optimized and gradual window transmission deterioration can be minimized. This is simulated with a statistical analysis developed to understand the uncertainty sources in the JET DTE1 data, as well as to guide the optimization of an upgraded, fuel-isotopic content (and helium-ash concentration) gas analysis system for the JET divertor in preparation for DTE2. While this random error can be reduced to allow measurement substantially below 1% concentration, analysis also shows a systematic error of up to 1% understood to be due to plasma?surface interactions in the Penning excitation, suggesting that 1% may still be the low-end limit for the sub-divertor measurement, unless a Penning-source conditioning approach is also developed.
机译:对于即将到来的JET DTE2活动及其相关的TT和DD阶段,检测和控制燃料同位素含量低至1%浓度水平的能力非常重要。此处显示的H少数族裔浓度从2%降低到1%的降低对离子回旋加速器频率核心加热的有效性有重大影响,而保持T或D浓度等于或低于1%的能力对于相应地限制了DD和TT相中聚变中子的产生。只要可以优化Penning发射的光收集和最小化逐步透射窗的衰减,基于Penning激活的光谱学,对(全局)同位素浓度的分偏器测量就可以最小程度地实现DTE2的1%检测。这是通过统计分析进行模拟的,该统计分析旨在理解JET DTE1数据中的不确定性来源,并指导为准备中的JET偏滤器优化升级的燃料同位素含量(和氦灰分浓度)气体分析系统用于DTE2。虽然可以减少此随机误差,以使测量的浓度大大低于1%,但分析还显示高达1%的系统误差,这是由于Penning激发中的等离子体表面相互作用所致,这表明1%的误差仍然很低。子分压器测量的最大极限,除非还开发了Penning源调节方法。

著录项

  • 来源
    《Nuclear fusion》 |2020年第1期|016021.1-016021.10|共10页
  • 作者

  • 作者单位

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|Oak Ridge Natl Lab POB 2009 Oak Ridge TN 37831 USA;

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|CEA IRFM F-13108 St Paul Les Durance France;

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|Royal Mil Acad LPP ERM KMS 30 Ave Renaissance B-1000 Brussels Belgium;

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|Culham Sci Ctr CCFE Abingdon OX14 3DB Oxon England;

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|Czech Acad Sci Inst Plasma Phys Za Slovankou 3 Prague 18200 Czech Republic|Natl Res Nucl Univ MEPhI 31 Kashirskoe Sh Moscow 115409 Russia;

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|Culham Sci Ctr CCFE Abingdon OX14 3DB Oxon England|Natl Inst Laser Plasma & Radiat Phys Bucharest 077125 Romania;

    Culham Sci Ctr JET EUROfus Consortium Abingdon OX14 3DB Oxon England|Culham Sci Ctr CCFE Abingdon OX14 3DB Oxon England|ITER Org F-13067 St Paul Les Durance 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
  • 中图分类
  • 关键词

    JET ITER-like wall; residual gas analysis; ITER; magnetic fusion energy; fusion fuel isotopic content; JET DTE2;

    机译:似JET ITER的墙;残留气体分析;ITER;磁聚变能聚变燃料同位素含量;JET DTE2;

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