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Characteristics of turbulence-driven plasma flow and origin of experimental empirical scalings of intrinsic rotation

机译:湍流驱动的等离子体流的特征和内在旋转的实验经验标度的起源

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Toroidal plasma flow driven by turbulent torque associated with nonlinear residual stress generation is shown to recover the observed key features of intrinsic rotation in experiments. Specifically, the turbulence-driven intrinsic rotation scales close to linearly with plasma gradients and the inverse of the plasma current, qualitatively reproducing empirical scalings obtained from a large experimental data base. The effect of magnetic shear on the symmetry breaking in the parallel wavenumber spectrum is identified. The origin of the current scaling is found to be the enhanced k symmetry breaking induced by increased radial variation of the safety factor as the current decreases. The physics origin for the linear dependence of intrinsic rotation on the pressure gradient comes from the fact that both turbulence intensity and the zonal flow shear, which are two key ingredients for driving the residual stress, are increased with the strength of the turbulence drives, which are R /L _(Te) and R/L_(ne) for the collisionless trapped electron mode (CTEM). Highlighted results also include robust radial pinches in toroidal flow, heat and particle transport driven by CTEM turbulence, which emerge in phase, and are shown to play important roles in determining plasma profiles. Also discussed are the experimental tests proposed to validate findings from these gyrokinetic simulations.
机译:湍流转矩驱动的环形等离子体流与非线性残余应力的产生相关,显示出可恢复实验中观察到的固有旋转的关键特征。具体来说,湍流驱动的固有旋转尺度与等离子体梯度和等离子体电流的倒数线性接近,定性地再现了从大型实验数据库获得的经验尺度。在平行波数谱中,确定了电磁剪切对对称破坏的影响。发现电流缩放的根源是随着电流减小安全系数的径向变化增加而引起的增强的k对称破坏。固有旋转对压力梯度的线性依赖性的物理学起源是由于湍流强度和纬向切变这两个驱动残余应力的关键因素,随湍流驱动强度的增加而增加的事实,对于无碰撞俘获电子模式(CTEM),分别为R / L _(Te)和R / L_(ne)。突出的结果还包括在环形流动,CTEM湍流驱动下的热量和颗粒传输方面的强劲径向收缩,这些收缩会同相出现,并显示出在确定血浆分布中起重要作用。还讨论了提出的实验测试,以验证来自这些陀螺动力学模拟的发现。

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