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Scaling of up-down asymmetric turbulent momentum flux with poloidal shaping mode number in tokamaks

机译:托卡马克中具有非整形模数的上下不对称湍动量通量缩放

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摘要

Breaking the up-down symmetry of tokamaks removes a constraint limiting intrinsic momentum transport, and hence toroidal rotation, to be small. Using gyrokinetic theory, we study the effect of different up-down asymmetric flux surface shapes on the turbulent transport of momentum. This is done by perturbatively expanding the gyrokinetic equation in large flux surface shaping mode number. It is found that the momentum flux generated by shaping that lacks mirror symmetry (which is necessarily up-down asymmetric) has a power law scaling with the shaping mode number. However, the momentum flux generated by mirror symmetric flux surface shaping (even if it is up-down asymmetric) decays exponentially with large shaping mode number. These scalings are consistent with nonlinear local gyrokinetic simulations and indicate that low mode number shaping effects (e.g. elongation, triangularity) are optimal for creating rotation. Additionally it suggests that breaking the mirror symmetry of flux surfaces may generate significantly more toroidal rotation.
机译:打破托卡马克的上下对称性消除了限制固有动量传输的限制,从而使环向旋转变小了。使用陀螺动力学理论,我们研究了不同的上下不对称通量表面形状对动量湍流传输的影响。这是通过以大通量表面成形模式数扰动地扩展陀螺动力学方程来完成的。发现通过缺乏镜像对称性(必然是上下不对称)的整形而产生的动量通量具有随整形模数而定的幂律定标。但是,镜像对称的磁通量表面整形(即使它是上下不对称的)所产生的动量磁通量随着整形模数的增加而呈指数衰减。这些比例与非线性局部陀螺运动仿真一致,并表明低模数整形效果(例如,伸长率,三角形度)对于产生旋转是最佳的。另外,这表明破坏通量表面的镜像对称性可能会产生明显更多的环形旋转。

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