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Edge transport barrier in JET hot ion H modes

机译:JET热离子H模式下的边缘传输势垒

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The effects of changing beam and plasma species on the edge transport barrier are investi- gated for ELM-free hot ion H mode discharges from the recent DT experiments on JET. The measured pressure at the top of the pedestal is higher for mixed deuterium and tritium and pure tritium plasmas over and above the level measured in pure deuterium plasmas at the same heating power. The pedestal pressure increases with beam tritium concentration for mixed deuterium--tritium beam injection into deuterium plasmas where the measured edge tritium concentration remains low. Alpha heating plays a significant role in the core of such plasmas, and the possible impact on the edge is discussed together with possible direct isotopic effects. Heuristic models for the transport barrier width are proposed, and used to explore a wider range of edge measurements including full power DD and DT pulses. This analysis supports the plasma current and mass dependence for a barrier width set by the orbit loss of either thermal or fast ions, though it does not unambiguously distinguish between them. The fast ion hypothesis could well account for some of the JET observations, though more theoretical work and direct experimental measurement would be required to confirm this. An ad hoc model for the power loss through the separatrix, P_loss ∝ n_edge~2 Z_eff,edge I_p~(-1), is proposed based on neoclassical theory, a ballooning limit to the edge gradient and a barrier width set by the poloidal ion gyroradius. Such a model is compared with experimental data from JET. In particular, the model ascribes the systematic difference in loss power between the Mark l and Mark II divertors to the change in the measured Z_eff. This change in Z_eff is consistent with the observed change in impurity production, which is described in some detail, together with a possible explanation provided by the temperature dependence of chemical sputtering.
机译:最近在JET上进行的DT实验研究了无ELM的热离子H模式放电对改变束和等离子体种类对边缘传输势垒的影响。对于混合氘和tri以及纯for等离子体,在相同加热功率下,基座顶部的测得压力高于纯氘等离子体中测得的压力。对于混合氘-beam束注入氘等离子体中的edge浓度较低的情况,基座压力随with浓度而增加。 α加热在此类等离子体的核心中起着重要作用,并且讨论了对边缘的可能影响以及可能的直接同位素效应。提出了用于传输势垒宽度的启发式模型,并用于探索更宽范围的边缘测量,包括全功率DD和DT脉冲。该分析支持由热离子或快速离子的轨道损耗确定的势垒宽度所对应的等离子体电流和质量依赖性,尽管它并未明确区分它们。快速离子假说可以很好地解释JET的一些观测结果,尽管需要更多的理论工作和直接的实验测量来证实这一点。基于新古典理论,边缘梯度的膨胀极限和由多倍性离子设定的势垒宽度,提出了一个通过分离矩阵的功率损耗的特殊模型,P_loss∝n_edge〜2Z_eff,edgeI_p〜(-1)。陀螺将这种模型与JET的实验数据进行比较。特别地,该模型将Mark 1和Mark II分流器之间的损耗功率的系统差异归因于测得的Z_eff的变化。 Z_eff的这种变化与观察到的杂质产生的变化一致,该变化进行了详细的描述,并可能由化学溅射的温度依赖性提供了可能的解释。

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