折弯及其在湍流级联中的作用:太阳轨道器观测

IF 5.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
D. Perrone, F. Chiappetta, A. Settino, R. De Marco, R. D’Amicis, D. Telloni, R. Bruno, S. Perri
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引用次数: 0

摘要

上下文。磁回调是一种阿尔夫萨奇性质的大振幅磁场偏转,其特点是速度和磁场之间高度相关,这是在内日球层中经常检测到的。它们的时间尺度从几百秒到几个小时不等,因此它们在太阳风中能量从大尺度到小尺度的湍流转移中所起的作用是一个关键问题。我们研究了在磁场和速度场中切换对湍流级联的贡献。所考虑的间隔是在太阳轨道器在内日球层观测到的第一束慢风的稀薄区域内取的。该分析基于磁通门磁强计MAG对磁场矢量的全节奏测量,以及从太阳风分析仪(SWA)套件的质子和α粒子传感器(PAS)以4秒的分辨率采样的再处理数据。通过对等离子体的可变寿命、结构功能和间断性进行评价,研究了等离子体的湍流和动力学参数,从而研究了等离子体对切换的反应。在从磁流体力学到动力学尺度的范围内,由两个(或更多)相互作用的结构产生的两个(或更多)局部良好的斑块中,可以观察到Switchbacks是孤立的结构。在这个慢afv风的区间内,它们主要影响径向的磁级联(在这个样本中几乎与平均场方向平行),不仅在跨尺度的能量含量方面,而且在不均匀性(即间歇性)方面,它在跨尺度传递磁场和动能方面起作用。此外,切换的特点是磁场和速度场分量之间的高度反相关,这意味着这些结构是v和b的局部对准区域。最后,没有发现动能和磁能之间的均分,这表明磁性结构的出现已经在0.6 au左右得到了很好的巩固。我们的结果表明,在这个缓慢的阿夫萨芬风区间,在气流方向上的磁性和速度湍流级联中,开关起着重要的作用。此外,通过确认和扩展先前在单个案例研究中观察到的特征,我们的结果支持这样一种观点,即开关强烈影响周围的等离子体,并对质子和α粒子起不同的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Switchbacks and their role in the turbulent cascade: Solar Orbiter observations
Context. Magnetic switchbacks are large-amplitude magnetic field deflections of Alfvénic nature that are characterized by a high degree of correlation between the velocity and the magnetic field that are routinely detected in the inner heliosphere. Their timescales vary between hundreds of seconds to up to few hours, so that their role within the turbulent transfer of energy from large to small scales in the solar wind is a key question.Aims. We investigate the contribution of switchbacks to the turbulence cascade in the magnetic and velocity fields. The considered interval was taken within the rarefaction region of the first stream of slow Afvénic wind observed by Solar Orbiter in the inner heliosphere.Methods. The analysis was based on full-cadence measurements for the magnetic field vector from the fluxgate magnetometer MAG and reprocessed ion data sampled at a resolution of 4 s from the Proton and Alpha particle sensor (PAS) of the Solar Wind Analyser (SWA) suite. Alfvénicity, structure functions, and intermittency were evaluated to investigate the turbulence ands kinetic parameters to study the reaction of the plasma to the switchbacks.Results. Switchbacks are observed as isolated structures or in well-localized patches that are generated by two (or more) interacting structures that cover a range from magnetohydrodynamic to kinetic scales. In this interval of the slow Afvénic wind, they mainly affect the magnetic cascade in the radial direction (which in this sample is almost parallel to the mean field direction) not only in terms of the energy content across the scales, but also in terms of the inhomogeneity (i.e., intermittency), which play a role in transferring magnetic and kinetic energies across scales. Moreover, switchbacks are characterized by a high anticorrelation between the magnetic and velocity field components, which implies that these structures are regions of a local alignment of v and b. Finally, no equipartition between kinetic and magnetic energy is found, which suggests that the emergence of magnetic structures is already well consolidated at about 0.6 au.Conclusions. Our results in this interval of slow Afvénic wind suggest that an important role is played by switchbacks in the magnetic and velocity turbulent cascade in the flow direction. Moreover, by confirming and expanding previous features observed for a single case-study, our results support the idea that switchbacks strongly influence the surrounding plasma and play a different role on protons and alpha particles.
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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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