首页> 外文期刊>Astronomy and astrophysics >Coronal loop seismology using damping of standing kink oscillations by mode coupling - II. additional physical effects and Bayesian analysis
【24h】

Coronal loop seismology using damping of standing kink oscillations by mode coupling - II. additional physical effects and Bayesian analysis

机译:冠状环地震学,利用模式耦合阻尼驻结扭结振荡-II。其他物理效应和贝叶斯分析

获取原文
           

摘要

Context. The strong damping of kink oscillations of coronal loops can be explained by mode coupling. The damping envelope depends on the transverse density profile of the loop. Observational measurements of the damping envelope have been used to determine the transverse loop structure which is important for understanding other physical processes such as heating. Aims. The general damping envelope describing the mode coupling of kink waves consists of a Gaussian damping regime followed by an exponential damping regime. Recent observational detection of these damping regimes has been employed as a seismological tool. We extend the description of the damping behaviour to account for additional physical effects, namely a time-dependent period of oscillation, the presence of additional longitudinal harmonics, and the decayless regime of standing kink oscillations. Methods. We examine four examples of standing kink oscillations observed by the Atmospheric Imaging Assembly (AIA) onboard the Solar Dynamics Observatory (SDO). We use forward modelling of the loop position and investigate the dependence on the model parameters using Bayesian inference and Markov chain Monte Carlo (MCMC) sampling. Results. Our improvements to the physical model combined with the use of Bayesian inference and MCMC produce improved estimates of model parameters and their uncertainties. Calculation of the Bayes factor also allows us to compare the suitability of different physical models. We also use a new method based on spline interpolation of the zeroes of the oscillation to accurately describe the background trend of the oscillating loop. Conclusions. This powerful and robust method allows for accurate seismology of coronal loops, in particular the transverse density profile, and potentially reveals additional physical effects.
机译:上下文。冠环扭结振荡的强阻尼可以通过模式耦合来解释。阻尼包络取决于环的横向密度分布。阻尼包络线的观测测量已用于确定横向回路结构,这对于理解其他物理过程(例如加热)非常重要。目的描述扭结波模式耦合的一般阻尼包络由高斯阻尼机制和指数阻尼机制组成。这些阻尼状态的最新观测检测已被用作地震工具。我们扩展了对阻尼行为的描述,以考虑到额外的物理效应,即随时间变化的振荡周期,额外的纵向谐波的存在以及站立扭结振荡的无衰减状态。方法。我们研究了由太阳动力学天文台(SDO)上的大气成像组件(AIA)观测到的站立扭结振荡的四个示例。我们使用环位置的正向建模,并使用贝叶斯推断和马尔可夫链蒙特卡洛(MCMC)抽样调查对模型参数的依赖性。结果。我们对物理模型的改进,结合贝叶斯推断和MCMC的使用,对模型参数及其不确定性进行了改进。贝叶斯因子的计算还使我们能够比较不同物理模型的适用性。我们还使用一种基于样条内插值的振荡零点的新方法来准确描述振荡环的背景趋势。结论。这种强大而强大的方法可以对日冕环进行精确的地震学分析,尤其是横向密度分布,并可能揭示出其他物理效应。

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