Local time, seasonal, and solar cycle dependency of longitudinal variations of TEC along the crest of EIA over India

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Abstract

The global wave number 4 structure in the Indian longitudinal region spanning from ∼70 to 95°E forming the upward slope of the peak in the total electron content (TEC) are reported along the crest of equatorial ionization anomaly (EIA). The continuous and simultaneous measurements from five GPS stations of GPS Aided Geo Augmented Navigation (GAGAN) network are used in this study. The long-term database (2004-2012) is utilized for examining the local time, seasonal, and solar cycle dependency on the longitudinal variations of TEC. Our results confirm the existence of longitudinal variations of TEC in accordance with wave number 4 longitudinal structure including its strength. The results suggest that these variations, in general, start to develop at ∼09 LT, achieve maximum strength at 12-15 LT, and decay thereafter, the decay rate depending on the season. They are more pronounced in equinoctial season followed by summer and winter. The longitudinal variations persist beyond midnight in equinox seasons, whereas in winter, they are conspicuously absent. Interestingly, they also exhibit significant solar cycle dependence in the solstices, whereas in the equinoxes, they are independent of solar activity. The comparison of crest-to-trough ratio (CTR) in the eastern (92°E) and western (72°E) extreme longitudes reveals higher CTR on the eastern side than over the western extreme, suggesting the role of nonmigrating tides in modulating the ExB vertical drift and the consequential EIA crest formation. Key Points Longitudinal variations of low latitude ionosphere over India are studied Longitude gradient of TEC is computed to quantify its strength Local time, seasonal, and solar cycle dependency is observed ©2013. American Geophysical Union. All Rights Reserved.

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Sunda, S., & Vyas, B. M. (2013). Local time, seasonal, and solar cycle dependency of longitudinal variations of TEC along the crest of EIA over India. Journal of Geophysical Research: Space Physics, 118(10), 6777–6785. https://doi.org/10.1002/2013JA018918

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