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Spatio-temporal structure of turbulent Reynolds stress zonal flow drive in 3D magnetic configuration

机译:3D磁性配置中湍流雷诺应力带流驱动的时空结构

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The poloidal dependence of the zonal flow drive and the underlying Reynolds stress structure are studied at the stellarator experiment?TJ-K by means of a poloidal Langmuir-probe array. This gives the unique possibility to study the locality of the Reynolds stress in a complex toroidal magnetic geometry. It is found that the Reynolds stress is not homogeneously distributed along the flux surface but has a strong poloidal asymmetry where it is concentrated on the outboard side with a maximum above the midplane. The average tilt of the turbulent structures is thereby reflected in the anisotropy of the bivariant velocity distribution. Using a conditional averaging technique the temporal dynamics reveal that the zonal flow drive is also maximal in this particular region. The results suggest an influence of the magnetic field line curvature, which controls the underlying plasma turbulence. The findings are a basis for further comparison with turbulence simulations in 3D geometry and demonstrate the need for a global characterisation of plasma turbulence.
机译:在恒星实验?TJ-K上,通过倍体Langmuir探针阵列研究了纬向流驱动的极谱依赖性和潜在的雷诺应力结构。这为研究复杂的环形磁几何中的雷诺应力的局部性提供了独特的可能性。发现雷诺应力沿通量表面不是均匀分布,而是具有很强的极向不对称性,它集中在外侧,最大集中在中平面以上。湍流结构的平均倾斜由此反映在双变量速度分布的各向异性中。使用条件平均技术,时间动力学揭示出在该特定区域中,纬向流驱动也是最大的。结果表明,磁场线曲率的影响可控制潜在的等离子体湍流。这些发现是进一步与3D几何中的湍流模拟进行比较的基础,并证明了对等离子体湍流进行全局表征的必要性。

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