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THE SOLAR INTERNETWORK. I. CONTRIBUTION TO THE NETWORK MAGNETIC FLUX

机译:太阳能网络。一,对网络磁通量的贡献

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The magnetic network (NE) observed on the solar surface harbors a sizable fraction of the total quiet Sun flux. However, its origin and maintenance are not well known. Here we investigate the contribution of internetwork (IN) magnetic fields to the NE flux. IN fields permeate the interior of supergranular cells and show large emergence rates. We use long-duration sequences of magnetograms acquired by Hinode and an automatic feature tracking algorithm to follow the evolution of NE and IN flux elements. We find that 14% of the quiet Sun (QS) flux is in the form of IN fields with little temporal variations. IN elements interact with NE patches and modify the flux budget of the NE either by adding flux (through merging processes) or by removing it (through cancellation events). Mergings appear to be dominant, so the net flux contribution of the IN is positive. The observed rate of flux transfer to the NE is 1.5 × 1024 Mx day–1 over the entire solar surface. Thus, the IN supplies as much flux as is present in the NE in only 9-13 hr. Taking into account that not all the transferred flux is incorporated into the NE, we find that the IN would be able to replace the entire NE flux in approximately 18-24 hr. This renders the IN the most important contributor to the NE, challenging the view that ephemeral regions are the main source of flux in the QS. About 40% of the total IN flux eventually ends up in the NE.
机译:在太阳表面观测到的磁网络(NE)占总安静太阳通量的相当一部分。但是,其来源和维护尚不为人所知。在这里,我们研究了互联(IN)磁场对NE通量的贡献。 IN场渗透到超颗粒细胞内部,并显示出大的出苗率。我们使用由Hinode采集的长时间磁图序列和自动特征跟踪算法来跟踪NE和IN通量元素的演变。我们发现14%的安静太阳(QS)通量是IN场形式,几乎没有时间变化。 IN元素与NE修补程序交互,并通过添加磁通量(通过合并过程)或通过移除磁通量(通过取消事件)来修改NE的磁通量预算。合并似乎占主导地位,因此IN的净通量贡献为正。在整个太阳表面上,观察到的通向NE的通量传输率为1.5×1024 Mx day-1。因此,IN仅在9到13小时内就能提供与NE中一样多的通量。考虑到并非所有传递的通量都被合并到NE中,我们发现IN能够在大约18-24小时内替换整个NE通量。这使IN成为NE的最重要贡献者,挑战了短暂区域是QS通量的主要来源的观点。最终,总输入通量的约40%最终到达NE。

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