Ionospheric data assimilation and forecasting during storms

Ionospheric storms can have important effects on radio communications and navigation systems. Storm time ionospheric predictions have the potential to form part of effective mitigation strategies to these problems. Ionospheric storms are caused by strong forcing from the solar wind. Electron density enhancements are driven by penetration electric fields, as well as by thermosphere-ionosphere behavior including Traveling Atmospheric Disturbances and Traveling Ionospheric Disturbances and changes to the neutral composition. This study assesses the effect on 1 h predictions of specifying initial ionospheric and thermospheric conditions using total electron content (TEC) observations under a fixed set of solar and high-latitude drivers. Prediction performance is assessed against TEC observations, incoherent scatter radar, and in situ electron density observations. Corotated TEC data provide a benchmark of forecast accuracy. The primary case study is the storm of 10 September 2005, while the anomalous storm of 21 January 2005 provides a secondary comparison. The study uses an ensemble Kalman filter constructed with the Data Assimilation Research Testbed and the Thermosphere Ionosphere Electrodynamics General Circulation Model. Maps of preprocessed, verticalized GPS TEC are assimilated, while high-latitude specifications from the Assimilative Mapping of Ionospheric Electrodynamics and solar flux observations from the Solar Extreme Ultraviolet Experiment are used to drive the model. The filter adjusts ionospheric and thermospheric parameters, making use of time-evolving covariance estimates. The approach is effective in correcting model biases but does not capture all the behavior of the storms. In particular, a ridge-like enhancement over the continental USA is not predicted, indicating the importance of predicting storm time electric field behavior to the problem of ionospheric forecasting.

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Copyright 2016 American Geophysical Union.


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Author Chartier, Alex
Matsuo, Tomoko
Anderson, Jeffrey
Collins, Nancy
Hoar, Timothy
Lu, Gang
Mitchell, Cathryn
Coster, Anthea
Paxton, Larry
Bust, Gary
Publisher UCAR/NCAR - Library
Publication Date 2016-01-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:05:57.425317
Metadata Record Identifier edu.ucar.opensky::articles:18091
Metadata Language eng; USA
Suggested Citation Chartier, Alex, Matsuo, Tomoko, Anderson, Jeffrey, Collins, Nancy, Hoar, Timothy, Lu, Gang, Mitchell, Cathryn, Coster, Anthea, Paxton, Larry, Bust, Gary. (2016). Ionospheric data assimilation and forecasting during storms. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7xs5wzn. Accessed 28 June 2025.

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