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影响地球的太阳瞬变现象:第24太阳活动周进展综述

Earth-affecting solar transients: a review of progresses in solar cycle 24.

作者信息

Zhang Jie, Temmer Manuela, Gopalswamy Nat, Malandraki Olga, Nitta Nariaki V, Patsourakos Spiros, Shen Fang, Vršnak Bojan, Wang Yuming, Webb David, Desai Mihir I, Dissauer Karin, Dresing Nina, Dumbović Mateja, Feng Xueshang, Heinemann Stephan G, Laurenza Monica, Lugaz Noé, Zhuang Bin

机构信息

Department of Physics and Astronomy, George Mason University, 4400 University Dr., MSN 3F3, Fairfax, VA 22030 USA.

Institute of Physics, University of Graz, Graz, Austria.

出版信息

Prog Earth Planet Sci. 2021;8(1):56. doi: 10.1186/s40645-021-00426-7. Epub 2021 Oct 4.

Abstract

This review article summarizes the advancement in the studies of Earth-affecting solar transients in the last decade that encompasses most of solar cycle 24. It is a part of the effort of the International Study of Earth-affecting Solar Transients (ISEST) project, sponsored by the SCOSTEP/VarSITI program (2014-2018). The Sun-Earth is an integrated physical system in which the space environment of the Earth sustains continuous influence from mass, magnetic field, and radiation energy output of the Sun in varying timescales from minutes to millennium. This article addresses short timescale events, from minutes to days that directly cause transient disturbances in the Earth's space environment and generate intense adverse effects on advanced technological systems of human society. Such transient events largely fall into the following four types: (1) solar flares, (2) coronal mass ejections (CMEs) including their interplanetary counterparts ICMEs, (3) solar energetic particle (SEP) events, and (4) stream interaction regions (SIRs) including corotating interaction regions (CIRs). In the last decade, the unprecedented multi-viewpoint observations of the Sun from space, enabled by STEREO Ahead/Behind spacecraft in combination with a suite of observatories along the Sun-Earth lines, have provided much more accurate and global measurements of the size, speed, propagation direction, and morphology of CMEs in both 3D and over a large volume in the heliosphere. Many CMEs, fast ones, in particular, can be clearly characterized as a two-front (shock front plus ejecta front) and three-part (bright ejecta front, dark cavity, and bright core) structure. Drag-based kinematic models of CMEs are developed to interpret CME propagation in the heliosphere and are applied to predict their arrival times at 1 AU in an efficient manner. Several advanced MHD models have been developed to simulate realistic CME events from the initiation on the Sun until their arrival at 1 AU. Much progress has been made on detailed kinematic and dynamic behaviors of CMEs, including non-radial motion, rotation and deformation of CMEs, CME-CME interaction, and stealth CMEs and problematic ICMEs. The knowledge about SEPs has also been significantly improved. An outlook of how to address critical issues related to Earth-affecting solar transients concludes this article.

摘要

这篇综述文章总结了过去十年间对影响地球的太阳瞬变现象的研究进展,这十年涵盖了太阳活动周期24的大部分时间。它是由国际日地能量计划(SCOSTEP)/可变太阳辐照度和太阳风相互作用计划(VarSITI)(2014 - 2018年)资助的国际影响地球的太阳瞬变现象研究(ISEST)项目的一部分成果。日地是一个综合物理系统,其中地球的空间环境在从分钟到千年的不同时间尺度上持续受到太阳的质量、磁场和辐射能量输出的影响。本文关注的是短时间尺度的事件,即从几分钟到几天的事件,这些事件直接导致地球空间环境的瞬态扰动,并对人类社会的先进技术系统产生强烈的不利影响。此类瞬态事件主要分为以下四种类型:(1)太阳耀斑,(2)日冕物质抛射(CMEs),包括其行星际对应物行星际日冕物质抛射(ICMEs),(3)太阳高能粒子(SEP)事件,以及(4)流相互作用区域(SIRs),包括共转相互作用区域(CIRs)。在过去十年中,日地关系天文台(STEREO)前后卫星与沿日地线的一系列观测站相结合,实现了从太空对太阳前所未有的多视角观测,从而在三维空间以及日球层的大体积范围内,对日冕物质抛射的大小、速度、传播方向和形态进行了更为精确和全面的测量。许多日冕物质抛射,特别是快速日冕物质抛射,可以清晰地被描述为具有双前沿(激波前沿加抛射物前沿)和三部分(明亮抛射物前沿、黑暗腔和明亮核心)的结构。基于拖曳的日冕物质抛射运动学模型得以开发,用于解释日冕物质抛射在日球层中的传播,并被有效地应用于预测它们到达1天文单位处的时间。已经开发了几个先进的磁流体动力学(MHD)模型,用于模拟从太阳上的起始直至它们到达1天文单位处的实际日冕物质抛射事件。在日冕物质抛射的详细运动学和动力学行为方面已经取得了很大进展,包括日冕物质抛射的非径向运动、旋转和变形、日冕物质抛射 - 日冕物质抛射相互作用以及隐身日冕物质抛射和有问题的行星际日冕物质抛射。关于太阳高能粒子的知识也有了显著提高。本文最后展望了如何解决与影响地球的太阳瞬变现象相关的关键问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b477/8550066/c70b723af425/40645_2021_426_Fig1_HTML.jpg

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