Development of intermediate-scale structure at different altitudes within an equatorial plasma bubble: implications for L-band scintillations

Bhattacharyya, A. ; Kakad, B. ; Gurram, P. ; Sripathi, S. ; Sunda, S. (2017) Development of intermediate-scale structure at different altitudes within an equatorial plasma bubble: implications for L-band scintillations Journal of Geophysical Research: Space Physics, 122 (1). pp. 1015-1030. ISSN 2169-9402

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Official URL: http://onlinelibrary.wiley.com/doi/10.1002/2016JA0...

Related URL: http://dx.doi.org/10.1002/2016JA023478

Abstract

An important aspect of the development of intermediate-scale length (approximately hundred meters to few kilometers) irregularities in an equatorial plasma bubble (EPB) that has not been considered in the schemes to predict the occurrence pattern of L-band scintillations in low-latitude regions is how these structures develop at different heights within an EPB as it rises in the postsunset equatorial ionosphere due to the growth of the Rayleigh-Taylor instability. Irregularities at different heights over the dip equator map to different latitudes, and their spectrum as well as the background electron density determine the strength of L-band scintillations at different latitudes. In this paper, VHF and L-band scintillations recorded at different latitudes together with theoretical modeling of the scintillations are used to study the implications of this structuring of EPBs on the occurrence and strength of L-band scintillations at different latitudes. Theoretical modeling shows that while S4 index for scintillations on a VHF signal recorded at an equatorial station may be >1, S4 index for scintillations on a VHF signal recorded near the crest of the equatorial ionization anomaly (EIA) generally does not exceed the value of 1 because the intermediate-scale irregularity spectrum at F layer peak near the EIA crest is shallower than that found in the equatorial F layer peak. This also explains the latitudinal distribution of L-band scintillations. Thus, it is concluded that there is greater structuring of an EPB on the topside of the equatorial F region than near the equatorial F layer peak.

Item Type:Article
Source:Copyright of this article belongs toJohn Wiley and Sons, Inc.
Keywords:Equatorial Plasma Bubble; Irregularity Spectrum; Ionospheric Scintillations
ID Code:108113
Deposited On:21 Dec 2017 11:10
Last Modified:21 Dec 2017 11:10

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