嵌套的活动区域锚定了日球层的电流片,并阻止了日冕磁场的反转

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
A. J. Finley
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引用次数: 0

摘要

上下文。在太阳活动周期中,由于磁通量向旋转极的出现、抵消和平流,太阳的磁场极性反转。通量涌现事件偶尔会聚集在一起,尽管尚不清楚这是由于潜在的太阳发电机还是仅仅是偶然。不管原因是什么,我们的目标是描述太阳磁场的反转和太阳日冕的结构是如何受到嵌套通量出现的影响的。从太阳光球磁场的球谐分解中,我们确定了偶极子分量的反转在几个太阳旋转中停止的时间。利用从太阳黑子周期23到现在的观测资料,我们定位了造成每次失速的巢状活跃区域,并利用位场源表面外推法探索了它们对日冕磁场的影响。嵌套磁通出现对日冕磁场拓扑结构的影响比孤立的磁通出现更为显著,因为它对光球磁场产生相干(低球谐阶)贡献。日球层的电流片,将相反方向的日冕磁场分开,由于形成了强烈的相反的磁通量,可以锚定在嵌套的活动区域之上。进一步的通量产生、抵消、微分旋转和扩散,然后有效地平流到日球层电流片并移动偶极子轴。巢状磁通的出现限制了日球层电流片的演化,阻碍了日冕磁场的反转。太阳风的来源可以在嵌套的活动区域周围更一致地识别,因为磁场拓扑结构在多次太阳旋转中保持自相似。这突出了识别和跟踪嵌套活动区域对指导现代太阳物理任务遥感观测的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nested active regions anchor the heliospheric current sheet and stall the reversal of the coronal magnetic field
Context. During the solar cycle, the Sun’s magnetic field polarity reverses due to the emergence, cancellation, and advection of magnetic flux towards the rotational poles. Flux emergence events occasionally cluster together, although it is unclear if this is due to the underlying solar dynamo or simply by chance.Aims. Regardless of the cause, we aim to characterise how the reversal of the Sun’s magnetic field and the structure of the solar corona are influenced by nested flux emergence.Methods. From the spherical harmonic decomposition of the Sun’s photospheric magnetic field, we identified times when the reversal of the dipole component stalls for several solar rotations. Using observations from sunspot cycle 23 to present, we located the nested active regions responsible for each stalling and explored their impact on the coronal magnetic field using potential field source surface extrapolations.Results. Nested flux emergence has a more significant impact on the topology of the coronal magnetic field than isolated emergences as it produces a coherent (low spherical harmonic order) contribution to the photospheric magnetic field. The heliospheric current sheet, which separates oppositely directed coronal magnetic fields, can become anchored above nested active regions due to the formation of strong opposing magnetic fluxes. Further flux emergence, cancellation, differential rotation, and diffusion, then effectively advects the heliospheric current sheet and shifts the dipole axis.Conclusions. Nested flux emergence can restrict the evolution of the heliospheric current sheet and impede the reversal of the coronal magnetic field. The sources of the solar wind can be more consistently identified around nested active regions because the magnetic field topology remains self-similar for multiple solar rotations. This highlights the importance of identifying and tracking nested active regions to guide the remote-sensing observations of modern heliophysics missions.
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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