TY - JOUR
T1 - Extreme Enhancements of Electron Temperature in Low Latitude Topside Ionosphere During the October 2016 Storm
AU - Zhang, Ruilong
AU - Liu, Libo
AU - Ma, Han
AU - Chen, Yiding
AU - Le, Huijun
AU - Yoshikawa, Akimasa
N1 - Funding Information:
This research is supported by the National Natural Science Foundation of China (42030202, 42174204, 41904140, and 41922029), National Key Research and Development Program (2018YFC1503504), and the Opening Funding of Chinese Academy of Sciences dedicated for the Chinese Meridian Project. The authors acknowledge the use of data from the Chinese Meridian Project.
Publisher Copyright:
© 2022. American Geophysical Union. All Rights Reserved.
PY - 2022/3
Y1 - 2022/3
N2 - We use the in-situ observations of DMSP and SWARM satellites to report the changes of the topside ionospheric electron temperature during the October 2016 storm. Electron temperature in the afternoon sector dramatically increases in low latitudes in the recovery phase of the storm. Furthermore, the temperature enhancements have an obvious dependence on longitude and are mainly centralized around 100°–150°E in different satellite observations. The temperature enhancements attain more than 2,000 K at 840 km and 1,500 K at 450 km around the magnetic equator. The decrease in the electron-ion collision cooling rate, resulting from the lessened topside electron density, could not fully explain the temperature enhancement. At the same time, the electron densities in crests of the equatorial ionization anomaly are suppressed drastically at 100°–150°E, which cause a less heat conduction effect from the equatorial topside ionosphere to low altitudes via magnetic field lines and heat the topside ionospheric electron temperature. Further analysis indicates that dayside westward disturbance dynamo electric field presents a significant longitude structure and is a primary driver for the topside ionospheric temperature enhancement during the storm.
AB - We use the in-situ observations of DMSP and SWARM satellites to report the changes of the topside ionospheric electron temperature during the October 2016 storm. Electron temperature in the afternoon sector dramatically increases in low latitudes in the recovery phase of the storm. Furthermore, the temperature enhancements have an obvious dependence on longitude and are mainly centralized around 100°–150°E in different satellite observations. The temperature enhancements attain more than 2,000 K at 840 km and 1,500 K at 450 km around the magnetic equator. The decrease in the electron-ion collision cooling rate, resulting from the lessened topside electron density, could not fully explain the temperature enhancement. At the same time, the electron densities in crests of the equatorial ionization anomaly are suppressed drastically at 100°–150°E, which cause a less heat conduction effect from the equatorial topside ionosphere to low altitudes via magnetic field lines and heat the topside ionospheric electron temperature. Further analysis indicates that dayside westward disturbance dynamo electric field presents a significant longitude structure and is a primary driver for the topside ionospheric temperature enhancement during the storm.
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U2 - 10.1029/2022JA030278
DO - 10.1029/2022JA030278
M3 - Article
AN - SCOPUS:85127294259
SN - 2169-9380
VL - 127
JO - Journal of Geophysical Research: Space Physics
JF - Journal of Geophysical Research: Space Physics
IS - 3
M1 - e2022JA030278
ER -