Severe Positive Ionospheric Storm at American Low Latitudes During an Intense Long-Lasting CEJ Period of the August 2018 Geomagnetic Storm
Highlights
- During the long-lasting CEJ event, total electron content and NmF2 showed unexpectedly large enhancements (exceeding 150%) in the southern EIA region of the American sector.
- Enhancements were accompanied by pronounced decreases in hmF2 and Hm, along with higher O/N2.
- Westward electric field is an important mechanism for positive ionospheric storms, even at EIA crest latitudes.
Abstract
1. Introduction
2. Materials and Methods
2.1. Geophysical Conditions During the August 2018 Storm
2.2. Horizontal Component of the Geomagnetic Field Measured by Ground-Based Magnetometers
2.3. Electron Density (Ne) Observed by Ground-Based Ionosondes and Swarm Langmuir Probe
2.4. Vertical Total Electron Content (TEC) Derived from Ground-Based and Satellite-Borne GNSS Receivers as Well as Ionosondes
2.5. ∑O/N2 from Global Ultraviolet Imager (GUVI) Instruments Onboard the TIMED Satellite
3. Results
3.1. Ionosondes
3.2. TEC
3.2.1. TEC Variations in Different Altitude Ranges at Ionosonde Locations
3.2.2. TEC Spatial Responses over the American Sector
4. Discussion
4.1. Effects of the Downward Plasma Drift
4.2. Effects from the Thermospheric Disturbance
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| CEJ | Counter Equatorial Electrojet |
| DTEC | Differential Total Electron Content |
| EEJ | Equatorial Electrojet |
| EIA | Equatorial Ionization Anomaly |
| Ey | Interplanetary Electric Field |
| GNSS | Global Navigation Satellite System |
| GUVI | Global Ultraviolet Imager |
| Hm | α-Chapman scale height |
| hmF2 | Peak Height of F2 Layer |
| KOU | Kourou |
| IMF | Interplanetary Magnetic Field |
| Ne | Electron Density |
| NmF2 | Peak Density of F2 Layer |
| Pdy | Solar Wind Dynamic Pressure |
| UT | Universal Time |
| TEC | Total Electron Content |
| TIDs | Traveling Ionospheric Disturbances |
| TTB | Tatuoca |
| VSH | Ionospheric Vertical Scale Height |
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Li, Q.; Kuai, J.; Zhong, J. Severe Positive Ionospheric Storm at American Low Latitudes During an Intense Long-Lasting CEJ Period of the August 2018 Geomagnetic Storm. Remote Sens. 2026, 18, 2955. https://doi.org/10.3390/rs18172955
Li Q, Kuai J, Zhong J. Severe Positive Ionospheric Storm at American Low Latitudes During an Intense Long-Lasting CEJ Period of the August 2018 Geomagnetic Storm. Remote Sensing. 2026; 18(17):2955. https://doi.org/10.3390/rs18172955
Chicago/Turabian StyleLi, Qiaoling, Jiawei Kuai, and Jiahao Zhong. 2026. "Severe Positive Ionospheric Storm at American Low Latitudes During an Intense Long-Lasting CEJ Period of the August 2018 Geomagnetic Storm" Remote Sensing 18, no. 17: 2955. https://doi.org/10.3390/rs18172955
APA StyleLi, Q., Kuai, J., & Zhong, J. (2026). Severe Positive Ionospheric Storm at American Low Latitudes During an Intense Long-Lasting CEJ Period of the August 2018 Geomagnetic Storm. Remote Sensing, 18(17), 2955. https://doi.org/10.3390/rs18172955

