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Nonlinear Numerical Simulations of Magneto-Acoustic Wave Propagation in Small-Scale Flux Tubes

机译:小型通量管中磁声波传播的非线性数值模拟

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摘要

We present results of nonlinear, two-dimensional, numerical simulations of magneto-acoustic wave propagation in the photosphere and chromosphere of small-scale flux tubes with internal structure. Waves with realistic periods of three to five minutes are studied, after horizontal and vertical oscillatory perturbations are applied to the equilibrium model. Spurious reflections of shock waves from the upper boundary are minimized by a special boundary condition. This has allowed us to increase the duration of the simulations and to make it long enough to perform a statistical analysis of oscillations. The simulations show that deep horizontal motions of the flux tube generate a slow (magnetic) mode and a surface mode. These modes are efficiently transformed into a slow (acoustic) mode in the v AS atmosphere. The slow (acoustic) mode propagates vertically along the field lines, forms shocks, and remains always within the flux tube. It might effectively deposit the energy of the driver into the chromosphere. When the driver oscillates with a high frequency, above the cutoff, nonlinear wave propagation occurs with the same dominant driver period at all heights. At low frequencies, below the cutoff, the dominant period of oscillations changes with height from that of the driver in the photosphere to its first harmonic (half period) in the chromosphere. Depending on the period and on the type of the driver, different shock patterns are observed.
机译:我们提出了具有内部结构的小型通量管在光球和色球中磁声波传播的非线性二维数值模拟结果。在将水平和垂直振动扰动应用于平衡模型之后,研究了具有三到五分钟的真实周期的波。通过特殊的边界条件,可以将来自上边界的冲击波的杂散反射降至最低。这使我们可以增加仿真的持续时间,并使其足够长,可以对振动进行统计分析。仿真表明,通量管的深水平运动会产生慢速(磁)模式和表面模式。这些模式在v A S 气氛中被有效地转换为慢速(声学)模式。慢速(声学)模式沿磁力线垂直传播,形成冲击,并始终保持在通量管内。它可能有效地将驱动程序的能量沉积到色球层中。当驱动器以高频率振荡时,在截止点以上,非线性波传播会在所有高度上以相同的主导驱动器周期发生。在截止频率以下的低频下,振荡的主要周期会随着高度的变化而变化,从光圈中的驱动器高度变化到色球层中的一次谐波(半周期)。根据驱动器的周期和类型,会观察到不同的震动模式。

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