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The role of ETG modes in JET–ILW pedestals with varying levels of power and fuelling

B. Chapman-Oplopoiou, D.R. Hatch, A.R. Field, L. Frassinetti, J.C. Hillesheim, L. Horvath, C.F. Maggi, J.F. Parisi, C.M. Roach, S. Saarelma2022年被引用 23Nuclear FusionIF 3出版社

We present the results of GENE gyrokinetic calculations based on a series of JET–ITER-like-wall (ILW) type I ELMy H-mode discharges operating with similar experimental inputs but at different levels of power and gas fuelling. We show that turbulence due to electron-temperature-gradient (ETGs) modes produces a significant amount of heat flux in four JET–ILW discharges, and, when combined with neoclassical simulations, is able to reproduce the experimental heat flux for the two low gas pulses. The simulations plausibly reproduce the high-gas heat fluxes as well, although power balance analysis is complicated by short ELM cycles. By independently varying the normalised temperature gradients and normalised density gradients around their experimental values, we demonstrate that it is the ratio of these two quantities that determines the location of the peak in the ETG growth rate and heat flux spectra. The heat flux increases rapidly as ηe increases above the experimental point, suggesting that ETGs limit the temperature gradient in these pulses. When quantities are normalised using the minor radius, only increases in produce appreciable increases in the ETG growth rates, as well as the largest increases in turbulent heat flux which follow scalings similar to that of critical balance theory. However, when the heat flux is normalised to the electron gyro-Bohm heat flux using the temperature gradient scale length , it follows a linear trend in correspondence with previous work by different authors.

日本語訳

我々は、同様の実験入力を用いて運転されたが、電力とガス供給のレベルが異なる一連のJET–ITERライクウォール(ILW)タイプI ELMy Hモード放電に基づくGENEジャイロ運動論的計算の結果を提示する。我々は、電子温度勾配(ETG)モードによる乱流が4つのJET–ILW放電において有意な量の熱流束を生じさせることを示し、新古典的シミュレーションと組み合わせると、2つの低ガスパルスについて実験熱流束を再現できることを示す。シミュレーションは高ガス熱流束ももっともらしく再現するが、パワーバランス解析は短いELMサイクルによって複雑化される。正規化温度勾配 と正規化密度勾配 を実験値の周りで独立に変化させることにより、これら2つの量の比 がETG成長率と熱流束スペクトルのピーク位置を決定することを実証する。熱流束はηeが実験点を超えて増加するにつれて急速に増加し、ETGがこれらのパルスにおいて温度勾配を制限していることを示唆する。量を小半径を用いて正規化すると、 の増加のみがETG成長率の有意な増加をもたらし、また臨界バランス理論のスケーリングに類似した乱流熱流束の最大の増加をもたらす。しかし、熱流束を温度勾配スケール長 を用いて電子ジャイロボーム熱流束に正規化すると、異なる著者による以前の研究に対応して線形傾向に従う。

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jet高精度(タイトル一致)iter低精度(概要文一致)

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JETFuellingElectron temperature gradient
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