论文标题
分析光涡流管表面上的动态过程的新方法
New approach for analysing dynamical processes on the surface of photospheric vortex tubes
论文作者
论文摘要
多数关于多尺度涡流运动的研究通过使用各种观察性和数值数据采用二维几何形状。这种方法限制了理解负责涡旋动态的物理过程的性质。在这里,我们开发了一种新方法,以从涡流管的边界表面提取基本信息。 3D高分辨率磁反射Muram数值数据已用于分析光晶间速度涡流。采用拉格朗日平均涡度偏差(LAVD)技术来根据流体元素的对流来定义涡流结构及其边界表面的中心。将这些表面映射到构造的包膜网格上,该网格允许研究关键等离子体参数作为空间和时间的函数。有助于理解血浆动力学的数量,例如还确定了Lorentz力,压力力,等离子体 - $β$。我们的结果表明,尽管密度和压力具有相当全球性的行为,但其他物理量会发生局部变化,其幅度和方向在空间和时间上发生变化。在表面上,水平方向的混合不有效,导致温度较高/较冷的局部区域出现。此外,对MHD Poynting Flux的分析证实,大多数能量是指向水平方向的。我们的发现还表明,驱动涡流表面等离子体动力学的压力和磁力是不平衡的,因此涡旋不会像刚体一样旋转。
The majority of studies on multi-scale vortex motions employ a two-dimensional geometry by using a variety of observational and numerical data. This approach limits the understanding the nature of physical processes responsible for vortex dynamics. Here we develop a new methodology to extract essential information from the boundary surface of vortex tubes. 3D high-resolution magnetoconvection MURaM numerical data has been used to analyse photospheric intergranular velocity vortices. The Lagrangian Averaged Vorticity Deviation (LAVD) technique was applied to define the centers of vortex structures and their boundary surfaces based on the advection of fluid elements. These surfaces were mapped onto a constructed envelope grid that allows the study of the key plasma parameters as functions of space and time. Quantities that help in understanding the dynamics of the plasma, e.g. Lorentz force, pressure force, plasma-$β$ were also determined. Our results suggest that, while density and pressure have a rather global behaviour, the other physical quantities undergo local changes, with their magnitude and orientation changing in space and time. At the surface, the mixing in the horizontal direction is not efficient, leading to appearance of localized regions with higher/colder temperatures. In addition, the analysis of the MHD Poynting flux confirms that the majority of the energy is directed in the horizontal direction. Our findings also indicate that the pressure and magnetic forces that drive the dynamics of the plasma on vortex surfaces are unbalanced and therefore the vortices do not rotate as a rigid body.