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JGR Space Physics - 2022 - Li - Spatial‐Temporal Behaviors of Large‐Scale Ionospheric Perturbations During Severe.pdf (7.42 MB)

Spatial-temporal behaviors of large-scale ionospheric perturbations during severe geomagnetic storms on September 7–8 2017 using the GNSS, SWARM and TIE-GCM techniques

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posted on 2022-12-06, 15:29 authored by Wang Li, Dongsheng Zhao, Changyong He, Craig HancockCraig Hancock, Yi Shen, Kefei Zhang
Geomagnetic storms on 7–8 September 2017 triggered severe ionospheric disturbances that had a serious effect on satellite navigation and radio communication. Multiple observations derived from Global Navigation Satellite System receivers, Earth's Magnetic Field and Environment Explorers (SWARM) and the Thermosphere-Ionosphere -Electrodynamics General Circulation Model's simulations are utilized to investigate the spatial-temporal ionospheric behaviors under storm conditions. The results indicate that the electron density in the Asia-Australia, Europe-Africa and America sectors suddenly changed with the Bz southward excursion, and the ionosphere over low-middle latitudes under the sunlit hemisphere is easily affected by the disturbed magnetic field. The SWARM observations verified the remarkable double-peak structure of plasma enhancements over the equator and middle latitudes. The physical mechanism of low-middle plasma disturbances can be explained by a combination effect of equatorial electrojets, vertical E × B drifts, meridional wind and thermospheric O/N2 change. Besides, the severe storms triggered strong Polar plasma disturbances on both dayside and nightside hemispheres, and the Polar disturbances had a latitudinal excursion associated with the offset of geomagnetic field. Remarkable plasma enhancements at the altitudes of 100–160 km were also observed in the auroral zone and middle latitudes (>47.5°N/S). The topside polar ionospheric plasma enhancements were dominated by the O+ ions. Furthermore, the TIE-GCM's simulations indicate that the enhanced vertical E × B drifts, cross polar cap potential and Joule heating play an important role in generating the topside plasma perturbations.

Funding

MOE | Fundamental Research Funds for the Central Universities (Fundamental Research Fund for the Central Universities). Grant Number: 2020QN31

Natural Science Foundation of Jiangsu Province (Jiangsu Natural Science Foundation). Grant Numbers: BK20200646, BK20200664

History

School

  • Architecture, Building and Civil Engineering

Published in

Journal of Geophysical Research: Space Physics

Volume

127

Issue

3

Publisher

American Geophysical Union

Version

  • VoR (Version of Record)

Rights holder

© American Geophysical Union

Acceptance date

2022-02-17

Publication date

2022-03-16

Copyright date

2022

ISSN

2169-9380

eISSN

2169-9402

Language

  • en

Depositor

Dr Craig Hancock. Deposit date: 30 November 2022

Article number

e2021JA029830

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