论文标题
关于$ {\ text {pr} _ \ mathrm {m}} \ ge 1 $
On the saturation mechanism of the fluctuation dynamo at ${\text{Pr}_\mathrm{M}} \ge 1$
论文作者
论文摘要
许多天体物理物体中磁场的存在是由于发电机作用引起的,因此动能的一部分被转化为磁能。一种湍流的发电机,其产生与湍流相同规模的磁场结构称为波动发电机。我们使用数值模拟来探索驱动湍流中波动发电机的非线性,统计上的稳态状态。我们证明,随着磁场的生长饱和,其扩增和扩散都受洛伦兹力在流动上的反反应的影响。由于速度场,磁场和电流密度之间的更强比对,磁场的扩增降低了。此外,我们确认由于磁场线的拉伸较弱而减少了扩增。相对于场线拉伸的扩散增强是通过磁性雷诺数的计算局部值的下降来量化的。使用Minkowski功能,我们量化了发电机生成的磁结构的形状,为运动型和饱和发电机中的磁丝和丝带,并得出具有磁性磁力数的典型长度,宽度和厚度的典型长度,宽度和厚度的尺度。我们表明,随着发电机饱和,这三个磁长度尺度都会增加。磁间歇性在运动场发电机(磁场强度成倍增长)中的强度持续在统计稳定状态下,但是强烈的磁丝和丝带的体积更高。
The presence of magnetic fields in many astrophysical objects is due to dynamo action, whereby a part of the kinetic energy is converted into magnetic energy. A turbulent dynamo that produces magnetic field structures on the same scale as the turbulent flow is known as the fluctuation dynamo. We use numerical simulations to explore the nonlinear, statistically steady state of the fluctuation dynamo in driven turbulence. We demonstrate that as the magnetic field growth saturates, its amplification and diffusion are both affected by the back-reaction of the Lorentz force upon the flow. The amplification of the magnetic field is reduced due to stronger alignment between the velocity field, magnetic field, and electric current density. Furthermore, we confirm that the amplification decreases due to a weaker stretching of the magnetic field lines. The enhancement in diffusion relative to the field line stretching is quantified by a decrease in the computed local value of the magnetic Reynolds number. Using the Minkowski functionals, we quantify the shape of the magnetic structures produced by the dynamo as magnetic filaments and ribbons in both kinematic and saturated dynamos and derive the scalings of the typical length, width, and thickness of the magnetic structures with the magnetic Reynolds number. We show that all three of these magnetic length scales increase as the dynamo saturates. The magnetic intermittency, strong in the kinematic dynamo (where the magnetic field strength grows exponentially) persists in the statistically steady state, but intense magnetic filaments and ribbons are more volume-filling.