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Role of fast ion pressure in the isotope effect in JET L-mode plasmas

机译:快速离子压力在JET L型等离子体的同位素效应中的作用

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This paper presents results of JET ITER-like wall L-mode experiments in hydrogen and deuterium (D) plasmas, dedicated to the study of the isotope dependence of ion heat transport by determination of the ion critical gradient and stiffness by varying the ion cyclotron resonance heating power deposition. When no strong role of fast ions in the plasma core is expected, the main difference between the two isotope plasmas is determined by the plasma edge and the core behavior is consistent with a gyro-Bohm scaling. When the heating power (and the fast ion pressure) is increased, in addition to the difference in the edge region, also the plasma core shows substantial changes. The stabilization of ion heat transport by fast ions, clearly visible in D plasmas, appears to be weaker in H plasmas, resulting in a higher ion heat flux in H with apparent anti-gyro-Bohm mass scaling. The difference is found to be caused by the different fast ion pressure between H and D plasmas, related to the heating power settings and to the different fast ion slowing down time, and is completely accounted for in non-linear gyrokinetic simulations. The application of the TGLF quasi-linear model to this set of data is also discussed.
机译:本文介绍了在氢和氘(D)等离子体中类似JET ITER的壁L型实验的结果,致力于通过改变离子回旋共振确定离子临界梯度和刚度来研究离子传热的同位素依赖性热功率沉积。当预计快速离子在等离子体核中没有强作用时,两个同位素等离子体之间的主要区别取决于等离子体边缘,并且核的行为与陀螺-玻姆定标一致。当增加加热功率(和快速离子压力)时,除了边缘区域的差异外,等离子核也显示出实质性变化。在D等离子体中清晰可见的快速离子对离子传热的稳定作用似乎在H等离子体中较弱,从而导致在H中具有较高的离子热通量,并且具有明显的反陀螺-玻姆质量缩放。发现差异是由于H和D等离子体之间的快速离子压力不同而引起的,与加热功率设置和不同的快速离子减速时间有关,并且在非线性陀螺动力学模拟中完全解决了这一问题。还讨论了TGLF准线性模型在该组数据中的应用。

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