Dynamics of the Tongue of Ionizations During the Geomagnetic Storm on 7 September 2015: The Altitudinal Dependences

Author:

Zhang Kedeng12ORCID,Song Huimin1,Wang Hui1ORCID,Liu Jing3ORCID,Wang Wenbin4ORCID,Wan Xin56ORCID,Wang Dedong7ORCID,Jin Yaqi8ORCID

Affiliation:

1. Department of Space Physics School of Electronic Information Hubei Luojia Laboratory Wuhan University Wuhan China

2. State Key Laboratory of Space Weather Chinese Academy of Sciences Beijing China

3. School of Space Science and Physics Shandong University Weihai China

4. High Altitude Observatory National Center for Atmospheric Research Boulder CO USA

5. Planetary Environmental and Astrobiological Research Laboratory (PEARL) School of Atmospheric Sciences Sun Yat‐sen University Zhuhai China

6. Key Laboratory of Tropical Atmosphere‐Ocean System Ministry of Education Zhuhai China

7. GFZ German Research Center for Geosciences Potsdam Germany

8. Department of Physics University of Oslo Oslo Norway

Abstract

AbstractUsing the electron density (Ne) observations from the Defense Meteorological Satellite Program, and Constellation Observing Systems for Meteorology, Ionosphere, and Climate mission and simulations from the Thermosphere Ionosphere Electrodynamic General Circulation Model. we investigate the dynamic evolution of the polar tongue of ionization (TOI) from double to single structures at different altitudes during a geomagnetic storm. The modeled Ne depicted that double and single TOIs occurred at altitudes above 300 km, respectively. During the northward turning of interplanetary magnetic field (IMF) Bz, the afternoon TOI disappeared and the morning TOI was reduced. The plasma transport due to neutral winds and ambipolar diffusion facilitated (prevented) the depletion of plasma density of the morning TOI at 300 (500) km, with a relative contribution of 42.8% and 28.6% (−15.4% and −76.9%), respectively. Downward E × B drifts led to an enhancement/reduction of plasma density in the storm enhanced density region in the lower/upper ionosphere. During the duskward turning of IMF By, the morning TOI could be mostly attributed to the anti‐sunward plasma drifts (75.8% at 300 km, 100% at 500 km), with a relatively stronger role of the zonal component than that of meridional E × B drifts. The upward E × B drifts were important/ignorable in the upper/lower ionosphere. Both the neutral winds and ambipolar diffusion resulted in an accumulation of plasma density of the morning TOI at 300 km indirectly (24.2%), however, their roles were minor at 500 km.

Funder

National Nature Science Foundation of China

Fundamental Research Funds for the Central Universities

National Center for Atmospheric Research

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Geophysics

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