论文标题

安静的冠状循环的缩放定律

Scaling Laws of Quiet-Sun Coronal Loops

论文作者

Mac Cormack, C., Fuentes, M. López, Mandrini, C. H., Lloveras, D. G., Poisson, M., Vásquez, A. M.

论文摘要

我们研究了通过结合层析成像技术和冠状磁场建模重建的安静太阳冠状环中的物理参数之间的一系列关系。我们使用差分发射测量层造影术(DEMT)来确定电晕中电子密度和温度的三维分布,并用势场源表面(PFSS)对磁场的外推进行了对磁场进行建模。通过沿推断的磁场线追踪DEMT产品,我们获得了环平均的电子密度和温度。同样,计算每个封闭磁场线的环路集成量。在太阳能循环23和24之间的活动最小值期间,我们将程序应用于Carrington旋转2082。我们在Loop-Aper-Pager-a-n_m \ sim l^{ - 0.35} $之间找到了比例定律,但是我们没有发现Loop-aververy温度和loop温度和loop温度和loop长度之间的显着关联。我们确认,尽管先前发现的结果是,赤道纬度的环平均温度低于较高的纬度。我们将这种行为与赤道纬度的存在相关联,沿其长度降低温度(``down''循环),这些温度通常比随着温度升高(``向上''环的循环更冷(``''''循环)。我们发现,在以前的观察和理论研究中,获得的安静循环所获得的量表通常与AR循环中发现的量表不一致。我们建议,为了更好地理解发现的关系,有必要使用在安静的阳性电晕的物理条件下使用的水动力代码转发重建的环路模型。

We study a series of relations between physical parameters in coronal loops of the quiet Sun reconstructed by combining tomographic techniques and modeling of the coronal magnetic field. We use differential emission measure tomography (DEMT) to determine the three-dimensional distribution of the electron density and temperature in the corona, and we model the magnetic field with a potential-field source-surface (PFSS) extrapolation of a synoptic magnetogram. By tracing the DEMT products along the extrapolated magnetic field lines, we obtain loop-averaged electron density and temperature. Also, loop-integrated energy-related quantities are computed for each closed magnetic field line. We apply the procedure to Carrington rotation 2082, during the activity minimum between Solar Cycles 23 and 24. We find a scaling law between the loop-average density $N$ and loop length $L$, $N_m \sim L^{-0.35}$, but we do not find a significant relation between loop-average temperature and loop length. We confirm though the previously found result that loop-average temperatures at the equatorial latitudes are lower than at higher latitudes. We associate this behavior with the presence at the equatorial latitudes of loops with decreasing temperatures along their length (``down'' loops), which are in general colder than loops with increasing temperatures (``up'' loops). We find that the obtained scalings for quiet-Sun loops do not generally agree with those found in the case of AR loops from previous observational and theoretical studies. We suggest that to better understand the relations found, it is necessary to forward model the reconstructed loops using hydrodynamic codes working under the physical conditions of the quiet-Sun corona.

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