论文标题

在太阳周期24中的地下区域和子午流的演变从Helioseologology数据中

Evolution of Subsurface Zonal and Meridional Flows in Solar Cycle 24 from Helioseismological Data

论文作者

Getling, Alexander V., Kosovichev, Alexander G., Zhao, Junwei

论文摘要

通过时间限制的热溶和在201020年5月至2020年9月在落地太阳能动力学天文台(SDO)确定的方位角和子午速度的结果,从-60°到 +60°至 +19mmm,spats spats spatse serm spatse sell sell sell sell sell sell syl sypatiepts pothiotiak of Photose的分析率从2020年5月到2020年9月。和子午循环。发现扭转振荡的模式或交替的“快速”和“缓慢”的纬向流从高纬度向赤道迁移,在整个时间间隔内延伸到时间 - 时间表图。振荡周期与双重太阳能周期相当,可以描述为延长的太阳周期。区域速度变化与太阳活性水平相关,局部速度增加对应于黑子数增加并在记录最强磁场的纬度上进行定位。 2018年的区域速度的急剧生长似乎是活动周期开始的先驱。25的开始。到2020年,区域速度场的强对称性可以被视为另一个前体。极向子午流的一般模式是由类似于纬向流的延伸 - 极性行为的纬度变化调节的。在最大活动期间,这些变化是用较高的谐波对应于子午流的较高谐波的,这些谐波会融合到点形成纬度。我们的结果表明,区域和子午流的变化都表现出扩展的太阳能周期行为,这是太阳能发电机的内在特征。

The results of determinations of the azimuthal and meridional velocities by time-distance helioseismology from Helioseismic and Magnetic Imager (HMI) onboard Solar Dynamics Observatory (SDO) from May 2010 to September 2020 at latitudes from -60° to +60° and depths to about 19 Mm below the photosphere are used to analyze spatiotemporal variations of the solar differential rotation and meridional circulation. The pattern of torsional oscillations, or latitudinal belts of alternating `fast' and `slow' zonal flows migrating from high latitudes towards the equator, is found to extend in the time--latitude diagrams over the whole time interval. The oscillation period is comparable with a doubled solar-activity-cycle and can be described as an extended solar cycle. The zonal-velocity variations are related to the solar-activity level, the local-velocity increases corresponding to the sunspot-number increases and being localized at latitudes where the strongest magnetic fields are recorded. The dramatic growth of the zonal velocities in 2018 appears to be a precursor of the beginning of activity Cycle 25. The strong symmetrization of the zonal-velocity field by 2020 can be considered another precursor. The general pattern of poleward meridional flows is modulated by latitudinal variations that are similar to the extended-solar-cycle behavior of the zonal flows. During the activity maximum, these variations are superposed with a higher harmonic corresponding to meridional flows converging to the spot-formation latitudes. Our results indicate that variations of both the zonal and meridional flows exhibit the extended solar-cycle behavior, which is an intrinsic feature of the solar dynamo.

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