Energetic particle transport and alpha driven instabilities in advanced confinement DT plasmas on TFTR

IF 3.5 1区 物理与天体物理 Q1 PHYSICS, FLUIDS & PLASMAS Nuclear Fusion Pub Date : 1999-09-01 DOI:10.1088/0029-5515/39/9Y/308
B. Stratton, R. Budny, D. Darrow, R. Fisher, E. Fredrickson, G. Fu, S. Medley, R. Nazikian, M. Petrov, M. Redi, E. Ruskov, G. Taylor, R. White, S. Zweben
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引用次数: 11

Abstract

The article reviews the physics of fusion alpha particles and energetic neutral beam ions studied in the final phase of TFTR operation, with an emphasis on observations in reversed magnetic shear (RS) and enhanced reversed shear (ERS) DT plasmas. Energy resolved measurements of the radial profiles of confined, trapped alphas in RS plasmas exhibit reduced core alpha density with increasing alpha energy, in contrast to plasmas with normal monotonic shear. The measured profiles are consistent with predictions of increased alpha loss due to stochastic ripple diffusion and increased first orbit loss in RS plasmas. In experiments in which a short tritium beam pulse is injected into a deuterium RS plasma, the measured DT neutron emission is lower than standard predictions assuming first orbit loss and stochastic ripple diffusion of the beam ions. A microwave reflectometer measured the spatial localization of low toroidal mode number (n), alpha driven toroidal Alfven eigenmodes (TAEs) in DT RS discharges. Although the observed ballooning character of the n = 4 mode is consistent with predictions of a kinetic MHD stability code, the observed antiballooning nature of the n = 2 mode is not. Furthermore, the modelling does not show the observed strong dependence of mode frequency on n. These alpha driven TAEs do not cause measurable alpha loss in TFTR. Other Alfven frequency modes with n = 2-4 seen in both DT and DD ERS and RS discharges are localized to the weak magnetic shear region near qmin. In 10-20% of DT discharges, normal low n MHD activity causes alpha loss at levels above the first orbit loss rate.
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TFTR中先进约束DT等离子体中高能粒子输运和α驱动的不稳定性
本文综述了在TFTR运行的最后阶段所研究的聚变α粒子和高能中性束离子的物理特性,重点介绍了在反磁剪切(RS)和增强反剪切(ERS) DT等离子体中的观测。与正常单调剪切等离子体相比,RS等离子体中受限、捕获α粒子的径向轮廓的能量分辨测量显示,随着α能量的增加,核心α密度降低。测量剖面与RS等离子体中随机纹波扩散导致α损失增加和第一轨道损失增加的预测相一致。在将短氚束脉冲注入氘RS等离子体的实验中,假设第一轨道损失和束离子的随机纹波扩散,测量到的DT中子发射低于标准预测。微波反射计测量了DT RS放电中低环面模数(n)、α驱动环面Alfven本征模(TAEs)的空间定位。虽然观测到的n = 4模态的气球化特征与动力学MHD稳定性代码的预测一致,但观测到的n = 2模态的反气球化性质却不是。此外,该模型并没有显示模式频率对n的强依赖性。这些α驱动的TAEs在TFTR中不会造成可测量的α损失。DT和DD放电中n = 2-4的其他Alfven频率模式,ERS和RS放电都定位于qmin附近的弱磁剪切区。在10-20%的DT放电中,正常的低n - MHD活动导致高于第一轨道损失率水平的α损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nuclear Fusion
Nuclear Fusion 物理-物理:核物理
CiteScore
6.30
自引率
39.40%
发文量
411
审稿时长
2.6 months
期刊介绍: Nuclear Fusion publishes articles making significant advances to the field of controlled thermonuclear fusion. The journal scope includes: -the production, heating and confinement of high temperature plasmas; -the physical properties of such plasmas; -the experimental or theoretical methods of exploring or explaining them; -fusion reactor physics; -reactor concepts; and -fusion technologies. The journal has a dedicated Associate Editor for inertial confinement fusion.
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