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The effect of electron cyclotron heating on density fluctuations at ion and electron scales in ITER baseline scenario discharges on the Dlll-D tokamak

机译:电子回旋加速器加热对Dll-D托卡马克ITER基线情景中离子和电子尺度上密度波动的影响

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摘要

Experiments simulating the ITER baseline scenario on the DIII-D tokamak show that torque-free pure electron heating, when coupled to plasmas subject to a net co-current beam torque, affects density fluctuations at electron scales on a sub-confinement time scale, whereas fluctuations at ion scales change only after profiles have evolved to a new stationary state. Modifications to the density fluctuations measured by the phase contrast imaging diagnostic (PCI) are assessed by analyzing the time evolution following the switch-off of electron cyclotron heating (ECH), thus going from mixed beam/ECH to pure neutral beam heating at fixed β_N. Within 20 ms after turning off ECH, the intensity of fluctuations is observed to increase at frequencies higher than 200 kHz; in contrast, fluctuations at lower frequency are seen to decrease in intensity on a longer time scale, after other equilibrium quantities have evolved. Non-linear gyro-kinetic modeling at ion and electron scales scales suggest that, while the low frequency response of the diagnostic is consistent with the dominant ITG modes being weakened by the slow-time increase in flow shear, the high frequency response is due to prompt changes to the electron temperature profile that enhance electron modes and generate a larger heat flux and an inward particle pinch. These results suggest that electron heated regimes in ITER will feature multi-scale fluctuations that might affect fusion performance via modifications to profiles.
机译:在DIII-D托卡马克上模拟ITER基线情景的实验表明,无扭矩纯电子加热与受净顺流束扭矩作用的等离子体耦合,会在子约束时间尺度上影响电子尺度的密度波动,而离子尺度的波动只有在轮廓已演化到新的稳定状态后才会改变。通过分析电子回旋加速器(ECH)关闭后的时间演变来评估由相衬成像诊断(PCI)测量的密度波动的变化,从而从混合束/ ECH变为固定β_N的纯中性束加热。关闭ECH后20毫秒内,观察到波动强度在高于200 kHz的频率处增加;相反,在其他平衡量发展之后,低频波动会在较长的时间内减小强度。离子和电子尺度的非线性陀螺动力学模型表明,虽然诊断的低频响应与流动剪切的缓慢增加所削弱的主要ITG模式一致,但高频响应却是由于迅速改变电子温度曲线,从而增强电子模式并产生更大的热通量和向内的颗粒收缩。这些结果表明,ITER中的电子加热方式将具有多尺度波动,这些波动可能会通过修改轮廓来影响融合性能。

著录项

  • 来源
    《Nuclear fusion》 |2017年第12期|177-186|共10页
  • 作者单位

    MIT Plasma Science and Fusion Center, Cambridge MA 02139, United States of America;

    General Atomics, PO Box 85608, San Diego CA, United States of America;

    MIT Plasma Science and Fusion Center, Cambridge MA 02139, United States of America;

    MIT Plasma Science and Fusion Center, Cambridge MA 02139, United States of America;

    MIT Plasma Science and Fusion Center, Cambridge MA 02139, United States of America;

    General Atomics, PO Box 85608, San Diego CA, United States of America;

    General Atomics, PO Box 85608, San Diego CA, United States of America;

    General Atomics, PO Box 85608, San Diego CA, United States of America;

    Princeton Plasma Physics Laboratory, PO Box 451, Princeton NJ 08540, United States of America;

    University Wisconsin, Madison WI 53706, United States of America;

    University California, Los Angeles, 405 Hilgard Ave, Los Angeles CA 90095, United States of America;

    @;

  • 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

    ITER; ETG; phase contrast; turbulence; ECH;

    机译:ITER;ETG;相衬湍流ECH;
  • 入库时间 2022-08-18 00:41:38

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