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The dynamics of unforced turbulence at high Reynolds number for Taylor-Green vortices generalized to MHD

机译:广义MHD的Taylor-Green涡旋在高雷诺数下的无强迫湍流动力学

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摘要

We study decaying magnetohydrodynamics (MHD) turbulence stemming from the evolution of the Taylor-Green flow generalized recently to MHD, with equal viscosity and magnetic resistivity and up to equivalent grid resolutions of 20483 points. A pseudo-spectral code is used in which the symmetries of the velocity and magnetic fields have been implemented, allowing for sizable savings in both computer time and usage of memory at a given Reynolds number. The flow is non-helical, and at initial time the kinetic and magnetic energies are taken to be equal and concentrated in the large scales. After testing the validity of the method on grids of 5123 points, we analyze the data on the large grids up to Taylor Reynolds numbers of ≈2200. We find that the global temporal evolution is accelerated in MHD, compared to the corresponding neutral fluid case. We also observe an interval of time when such configurations have quasi-constant total dissipation, time during which statistical properties are determined after averaging over of the order of two turn-over times. A weak turbulence spectrum is obtained which is also given in terms of its anisotropic components. Finally, we contrast the development of small-scale eddies with two other initial conditions for the magnetic field and briefly discuss the structures that develop, and which display a complex array of current and vorticity sheets with clear rolling-up and folding.
机译:我们研究了衰减的磁流体动力学(MHD)湍流,该湍流源于最近推广到MHD的泰勒格林流的演化,具有相等的粘度和磁电阻率,并且等效网格分辨率为2048 3 点。使用伪谱码,其中已实现了速度和磁场的对称性,从而在给定的雷诺数下可节省大量的计算机时间和内存使用量。该流动是非螺旋的,并且在初始时间动能和磁能被认为是相等的并且集中在大尺度上。在512 3 点的网格上测试该方法的有效性之后,我们分析了高达2200的泰勒雷诺数的大型网格上的数据。我们发现,与相应的中性流体情况相比,MHD中的全局时间演化得到了加速。我们还观察到这样的配置具有准恒定的总耗散的时间间隔,在该时间间隔内,在对两个周转时间进行平均后,确定统计属性。获得了一个弱湍流谱,它也以其各向异性成分给出。最后,我们将小涡流的发展与磁场的其他两个初始条件进行了对比,并简要讨论了所形成的结构,这些结构显示出复杂的电流和涡度片阵列,并具有清晰的卷起和折叠。

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  • 来源
    《Geophysical & Astrophysical Fluid Dynamics》 |2010年第3期|p.115-134|共20页
  • 作者

    A. Pouquet; D. Rosenberg;

  • 作者单位

    Turbulence Numerics Team/NCAR, P.O. Box 3000, Boulder, CO 80307-3000, USA;

    Earth and Sun Systems Laboratory/NCAR, P.O. Box 3000, Boulder, CO 80307-3000, USA;

    Department of Applied Physics and Applied Mathematics, Columbia University, 500 W. 120th Street;

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