...
首页> 外文期刊>The Astrophysical journal >THREE-DIMENSIONAL MAGNETOHYDRODYNAMIC WAVE BEHAVIOR IN ACTIVE REGIONS: INDIVIDUAL LOOP DENSITY STRUCTURE
【24h】

THREE-DIMENSIONAL MAGNETOHYDRODYNAMIC WAVE BEHAVIOR IN ACTIVE REGIONS: INDIVIDUAL LOOP DENSITY STRUCTURE

机译:活动区域中的三维磁流体动力波行为:单个环密度结构

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

We present the numerical results from a three-dimensional (3D) nonlinear MHD simulation of wave activity in an idealized active region in which individual, realistic loop density structure is included. The active region is modeled by an initially force-free, dipole magnetic configuration with gravitationally stratified density and contains a loop with a higher density than its surroundings. This study represents an extension to the model of Ofman & Thompson. As found in their work, we see that fast wave propagation is distorted by the Alfven speed profile and that the wave propagation generates field line oscillations, which are rapidly damped. We find that the addition of a high-density loop significantly changes the behavior inside that loop, specifically in that the loop can support trapped waves. We also find that the impact of the fast wave impulsively excites both horizontal and vertical loop oscillations. From a parametric study of the oscillations, we find that the amplitude of the oscillations decreases with increasing density contrast, whereas the period and damping time increase. This is one of the key results presented here: that individual loop density structure can influence the damping rate, and specifically that the damping time increases with increasing density contrast. All these results were compared with an additional study performed on a straight coronal loop with similar parameters. Through comparison with the straight loop, we find that the damping mechanism in our curved loop is wave leakage due to curvature. The work performed here highlights the importance of including individual loop density structure in the modeling of active regions and illustrates the need for obtaining accurate density measurements for coronal seismology.
机译:我们提出了在理想化的有源区域中进行波活动的三维(3D)非线性MHD模拟的数值结果,该区域中包含了单独的,实际的回路密度结构。主动区域通过重力分层密度的初始无力偶极子磁性结构建模,并包含密度高于其周围环境的回路。这项研究代表了Ofman&Thompson模型的扩展。从他们的工作中发现,我们发现Alfven速度分布会扭曲快速的波传播,并且波传播会产生磁力线振荡,并迅速衰减。我们发现添加高密度环路会显着改变该环路内部的行为,特别是该环路可以支持陷波。我们还发现,快速波的冲击脉冲地激发了水平和垂直环路的振荡。通过对振动的参数研究,我们发现振动的幅度随着密度对比的增加而减小,而周期和阻尼时间则增加。这是这里提出的关键结果之一:单独的回路密度结构会影响阻尼率,特别是阻尼时间随密度对比的增加而增加。将所有这些结果与在具有相似参数的直冠环上进行的其他研究进行了比较。通过与直线环比较,我们发现曲线环中的阻尼机制是由于曲率引起的波泄漏。此处进行的工作突出了在活动区域​​建模中包括单个环密度结构的重要性,并说明了需要获得用于冠状地震学的准确密度测量值的需求。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号