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Core turbulence behavior moving from ion-temperature-gradient regime towards trapped-electron-mode regime in the ASDEX Upgrade tokamak and comparison with gyrokinetic simulation

机译:在ASDEX升级版托卡马克中,核心湍流行为从离子温度梯度态向俘获电子模式态转变,并与动力学模拟进行比较

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摘要

Additional electron cyclotron resonance heating (ECRH) is used in an ion-temperature-gradient instability dominated regime to increase R/L-Te in order to approach the trapped-electron-mode instability regime. The radial ECRH deposition location determines to a large degree the effect on R/L-Te. Accompanying scale-selective turbulence measurements at perpendicular wavenumbers between k(perpendicular to) = 4-18 cm(-1) (k(perpendicular to)rho(s) = 0.7-4.2) show a pronounced increase of large-scale density fluctuations close to the ECRH radial deposition location at mid-radius, along with a reduction in phase velocity of large-scale density fluctuations. Measurements are compared with results from linear and non-linear flux-matched gyrokinetic (GK) simulations with the gyrokinetic code GENE. Linear GK simulations show a reduction of phase velocity, indicating a pronounced change in the character of the dominant instability. Comparing measurement and non-linear GK simulation, as a central result, agreement is obtained in the shape of radial turbulence level profiles. However, the turbulence intensity is increasing with additional heating in the experiment, while gyrokinetic simulations show a decrease.
机译:附加的电子回旋共振加热(ECRH)用于离子温度梯度不稳定性主导状态,以增加R / L-Te,以接近俘获电子模式不稳定性状态。径向ECRH沉积位置在很大程度上决定了对R / L-Te的影响。在k(垂直)= 4-18 cm(-1)(k(垂直)rho(s)= 0.7-4.2)之间的垂直波数下进行的尺度选择性湍流测量表明,大规模密度波动显着增加中心半径处的ECRH径向沉积位置,以及大规模密度波动的相速度降低。将测量结果与使用动能代码GENE进行的线性和非线性通量匹配的动能匹配(GK)仿真结果进行比较。线性GK模拟表明相速度降低,表明主要不稳定性特征发生了明显变化。比较测量结果和非线性GK模拟,作为主要结果,在径向湍流能级轮廓的形状中获得了一致。然而,在实验中,湍流强度随着额外的加热而增加,而陀螺动力学模拟表明湍流强度有所降低。

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