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Forward modeling of propagating slow waves in coronal loops and their frequency-dependent damping

机译:冠状环中传播慢波的正演模拟及其频率相关阻尼

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摘要

Propagating slow waves in coronal loops exhibit a damping that depends upon the frequency of the waves. In this study we aim to investigate the relationship of the damping length (Ld) with the frequency of the propagating wave. We present a 3D coronal loop model with uniform density and temperature and investigate the frequency-dependent damping mechanism for the four chosen wave periods. We include the thermal conduction to damp the waves as they propagate through the loop. The numerical model output has been forward modeled to generate synthetic images of SDO/AIA 171 and 193 channels. The use of forward modeling, which incorporates the atomic emission properties into the intensity images, allows us to directly compare our results with the real observations. The results show that the damping lengths vary linearly with the periods. We also measure the contributions of the emission properties on the damping lengths by using density values from the simulation. In addition to that we have also calculated the theoretical dependence of Ld with wave periods and showed that it is consistent with the results we obtained from the numerical modeling and earlier observations.
机译:在冠状环中传播的慢波表现出的阻尼取决于波的频率。在这项研究中,我们旨在研究阻尼长度(Ld)与传播波频率的关系。我们提出了具有均匀密度和温度的3D冕状环模型,并研究了四个选定波浪周期的频率相关阻尼机制。我们包括热传导,以衰减波浪在回路中传播时的情况。数值模型输出已经过正向建模,以生成SDO / AIA 171和193通道的合成图像。正向建模的使用将原子发射特性整合到强度图像中,可以使我们直接将结果与实际观测结果进行比较。结果表明,阻尼长度随周期线性变化。我们还通过使用模拟中的密度值来测量发射特性对阻尼长度的贡献。除此之外,我们还计算了Ld与波浪周期的理论依赖性,并表明它与我们从数值模拟和早期观测获得的结果一致。

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