Temperature Variations in the Mesosphere and Lower Thermosphere during Geomagnetic Storms with Disparate Durations at High Latitudes

Author:

Wei Guanchun1,Lu Jianyong1ORCID,Wang Wenbin2,Tian Yufeng3,Li Jingyuan1ORCID,Xiong Shiping1,Sun Meng1ORCID,Shen Fuzhen4,Li Zheng1,Zhang Hua1,Cui Jingqi1,Yang Chaolei3,Yao Jingrui1,Jiang Shuwen1,Zhu Zhixin1,Wang Jingye1

Affiliation:

1. Institute of Space Weather, School of Atmospheric Physics, Nanjing University of Information Science & Technology, Nanjing 210044, China

2. High Altitude Observatory, National Center for Atmospheric Research, Boulder, CO 80307, USA

3. Kunming General Survey of Natural Resources Center, China Geological Survey, Kunming 650108, China

4. Institute of Energy and Climate Research, IEK-7: Stratosphere, Forschungszentrum Jülich, 52425 Jülich, Germany

Abstract

Using the temperature data observed from the Sounding of the Atmosphere using Broadband Emission Radiometry (SABER), we investigate the response of the mesosphere and lower thermosphere (MLT) to two medium geomagnetic storms with disparate durations, on 20 April 2018 and 10 April 2022. The high-latitude MLT temperature increase in the Southern hemisphere can reach 40 K during April 2018 geomagnetic storm with a longer duration (Kp values greater than 4 for 15 h), while the temperature variations are less than 10 K for the April 2022 event (Kp values greater than 4 for 6 h). To investigate the different temperature responses to disparate geomagnetic storm durations and understand what physical process results in this difference, we simulated the two events using the thermosphere ionosphere mesosphere electrodynamics general circulation model (TIMEGCM). The simulations show that more particles and energy input in longer-duration geomagnetic storms produce larger ion drag force and pressure gradient force at ~130 km, and then the enhanced two forces cause faster horizontal wind, leading to larger horizontal divergence. Subsequently, the stronger downward vertical wind is transported to the MLT region (below 110 km) and ultimately makes greater temperature increases through adiabatic heating/cooling and vertical advection. Therefore, the effects of the storm’s duration on the MLT temperature are also important.

Funder

National Natural Science Foundation of China

Startup Foundation for Introducing Talent of NUIST

China Geological Survey

Open Funding of MNR Key Laboratory for Polar Science

Publisher

MDPI AG

Subject

General Physics and Astronomy

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