论文标题

太阳电晕中扭结MHD波的相混合:粘性耗散和加热

Phase Mixing of Kink MHD Waves in the Solar Corona: Viscous Dissipation and Heating

论文作者

Ebrahimi, Zanyar, Soler, Roberto, Karami, Kayoomars

论文摘要

在太阳能冠管中经常观察到磁流失动力学(MHD)扭结波,这使它们成为太阳能电晕地震学的绝佳工具。在这里,研究了粘度对扭结波的演变的影响。为此,我们在径向不均匀的通量管中以长波长的极限解决了不可压缩的线性粘性MHD方程的初始值问题。使用模态扩展技术获得了扰动的时空行为。我们确认,对于代表冠状血浆的大雷诺数,扭结振动振幅的降低是由于谐振吸收机制将全局横向振荡转化为通量管不均匀层中旋转运动的旋转运动。我们表明,粘度抑制了通量管的不均匀区域中扰动的相混合速率,并防止一旦达到足够小的尺度,系统中的小尺度的连续构建。计算粘性耗散函数以研究通量管的不均匀层中粘度加热的血浆加热。对于10^6-10^8阶的雷诺数,扭结波的能量在扭结振荡的两到八个时期转化为热量。对于较大,更现实的雷诺数,在全局扭振荡后,加热发生了,并且在通量管的可观察到的横向运动期间没有显着加热。

Magnetohydrodynamic (MHD) kink waves have been observed frequently in solar coronal flux tubes, which makes them a great tool for seismology of the solar corona. Here, the effect of viscosity is studied on the evolution of kink waves. To this aim, we solve the initial value problem for the incompressible linearized viscous MHD equations in a radially inhomogeneous flux tube in the limit of long wavelengths. Using a modal expansion technique the spatio-temporal behavior of the perturbations is obtained. We confirm that for large Reynolds numbers representative of the coronal plasma the decrement in the amplitude of the kink oscillations is due to the resonant absorption mechanism that converts the global transverse oscillation to rotational motions in the inhomogeneous layer of the flux tube. We show that viscosity suppresses the rate of phase mixing of the perturbations in the inhomogeneous region of the flux tube and prevents the continuous building up of small scales in the system once a sufficiently small scale is reached. The viscous dissipation function is calculated to investigate plasma heating by viscosity in the inhomogeneous layer of the flux tube. For Reynolds numbers of the order of 10^6-10^8, the energy of the kink wave is transformed into heat in two to eight periods of the kink oscillation. For larger and more realistic Reynolds numbers, heating happens, predominantly, after the global kink oscillation is damped, and no significant heating occurs during the observable transverse motion of the flux tube.

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