回顾 1972 年 8 月和 1989 年 3 月(艾伦)空间天气事件:我们能从中学到新东西吗?

IF 2.6 2区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS Journal of Geophysical Research: Space Physics Pub Date : 2024-07-17 DOI:10.1029/2024JA032622
Bruce T. Tsurutani, Abhijit Sen, Rajkumar Hajra, Gurbax S. Lakhina, Richard B. Horne, Tohru Hada
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引用次数: 0

摘要

对 1972 年 8 月和 1989 年 3 月的空间天气事件进行了更新总结。将这两次事件的特征与卡林顿 1859 年事件和其他几次重大空间天气事件进行了比较。结论是太阳活动区以各种形式释放能量(X 射线、超紫外光子、可见光、日冕物质抛射(CME)等离子体和场),它们反过来又以各种方式产生其他高能效应(太阳高能粒子(SEPs)、磁暴)。显然,这些不同的能量汇之间并不存在一一对应的关系。在不同的空间天气事件中,能量的分布往往不同。关于在行星际 CME(ICME)冲击下加速的 SEPs,结论是与准平行冲击相关的费米机制相对较弱,而准垂直冲击下的梯度漂移机制(电场)将产生较硬的光谱和较高的通量。如果 1972 年 8 月 4 日的固有磁云条件(行星际磁场向南,而不是向北)和行星际太阳到 1 au 的条件不同,1972 年 8 月 4 日的磁暴和磁层从黎明到黄昏的电场就会比卡林顿事件大得多。在这些特殊的行星际条件下,可能会形成 Miyake 等人(2012 年)的 https://doi.org/10.1038/nature11123-like 极端 SEP 事件。持续时间较长的 1989 年复杂风暴可能比卡林顿风暴更大,因为环流粒子的总能量更大。
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Review of the August 1972 and March 1989 (Allen) Space Weather Events: Can We Learn Anything New From Them?

Updated summaries of the August 1972 and March 1989 space weather events have been constructed. The features of these two events are compared to the Carrington 1859 event and a few other major space weather events. It is concluded that solar active regions release energy in a variety of forms (X-rays, EUV photons, visible light, coronal mass ejection (CME) plasmas and fields) and they in turn can produce other energetic effects (solar energetic particles (SEPs), magnetic storms) in a variety of ways. It is clear that there is no strong one-to-one relationship between these various energy sinks. The energy is often distributed differently from one space weather event to the next. Concerning SEPs accelerated at interplanetary CME (ICME) shocks, it is concluded that the Fermi mechanism associated with quasi-parallel shocks is relatively weak and that the gradient drift mechanism (electric fields) at quasi-perpendicular shocks will produce harder spectra and higher fluxes. If the 4 August 1972 intrinsic magnetic cloud condition (southward interplanetary magnetic field instead of northward) and the interplanetary Sun to 1 au conditions were different, a 4 August 1972 magnetic storm and magnetospheric dawn-to-dusk electric fields substantially larger than the Carrington event would have occurred. Under these special interplanetary conditions, a Miyake et al. (2012), https://doi.org/10.1038/nature11123-like extreme SEP event may have been formed. The long duration complex 1989 storm was probably greater than the Carrington storm in the sense that the total ring current particle energy was larger.

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来源期刊
Journal of Geophysical Research: Space Physics
Journal of Geophysical Research: Space Physics Earth and Planetary Sciences-Geophysics
CiteScore
5.30
自引率
35.70%
发文量
570
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