Unraveling the Climatology and Dynamics of the Low-Latitude Ionosphere: Multi-Instrument Observations and Modeling
The low-latitude ionosphere is a highly dynamic region characterized by distinct morphological features, most notably the Equatorial Ionization Anomaly (EIA) and the frequent occurrence of Equatorial Plasma Bubbles (EPBs). Understanding the generation, evolution, and severe storm-time behavior of these structures is critical for advancing space weather forecasting and mitigating ionospheric scintillation effects on global navigation and communication systems. This work synthesizes recent advancements in characterizing low-latitude ionospheric electrodynamics through a combination of extensive multi-instrument observations and high-resolution numerical modeling.
First, observational data—including global Total Electron Content (TEC) maps and space-based ultraviolet imaging—are integrated to investigate the climatology of the EIA. The results highlight the complex interplay of the solar radiation, the thermosphere, and the ionosphere. Then, by leveraging the Global Ionosphere Thermosphere Model coupled with theSAMI3 model, our research isolates the driving mechanisms behind the development of super plasma bubbles and super fountain effects during major geomagnetic storms. Finally, machine-learning techniques was utilized to offer a more robust predictive capability for the coupled ionosphere-thermosphere system under disturbed conditions.
Zihan Wang is an assistant professor of space physics in the Department of Physics at the University of Texas at Arlington. Before that, He received his B.S. in 2016 from Peking University and his Ph.D. in 2021 from the University of Michigan. His research focuses on utilizing numerical and machine learning modeling and data analysis to investigate the magnetosphere-ionosphere-thermosphere coupling process.