Rain Fade on Satellite Transmission in Warri, Benin, and Abuja, Nigeria
Authors
Cooperative Information Network, Obafemi Awolowo University, Ile Ife, Osun State, National Space Research and Development Agency, Abuja (Nigeria)
Cooperative Information Network, Obafemi Awolowo University, Ile Ife, Osun State, National Space Research and Development Agency, Abuja (Nigeria)
Center for Satellite Technology Development, National Space Research and Development Agency, Abuja (Nigeria)
Cooperative Information Network, Obafemi Awolowo University, Ile Ife, Osun State, National Space Research and Development Agency, Abuja (Nigeria)
Cooperative Information Network, Obafemi Awolowo University, Ile Ife, Osun State, National Space Research and Development Agency, Abuja (Nigeria)
Article Information
DOI: 10.51584/IJRIAS.2026.11060313
Subject Category: Telecommunications
Volume/Issue: 11/6 | Page No: 4162-4178
Publication Timeline
Submitted: 2026-07-02
Accepted: 2026-07-07
Published: 2026-07-21
Abstract
Rain-induced attenuation (rain fade) is one of the most significant atmospheric propagation impairments affecting the performance and reliability of satellite communication systems operating at frequencies above 10 GHz, particularly in tropical regions characterized by intense precipitation. This study investigates the impact of rainfall on satellite signal propagation in three representative Nigerian locations, Warri, Benin, and Abuja, to evaluate spatial and temporal rainfall variability and its implications for satellite communication link performance. Rainfall data for the period 2020–2021 were obtained from the Nigerian Meteorological Agency (NiMet) and analyzed using rainfall classification based on rain-rate intensity. Rain events were categorized as drizzle, widespread rain, showers, thunderstorms, and monthly rainfall accumulation; rainfall-type distribution, and frequency of occurrence were statistically analyzed in Microsoft Excel. The study further assessed the suitability of established rain attenuation prediction models, including the ITU-R P.618 model, for tropical propagation environments.
The results reveal pronounced geographical variations in rainfall characteristics, with the coastal cities of Warri and Benin recording significantly higher annual rainfall accumulations (2,670–2,842 mm and 2,018–2,313 mm, respectively) than Abuja (1,326–1,380 mm). Peak rainfall occurred during the wet season, with exceptionally high precipitation recorded in August 2021, contrary to the traditionally expected August break. Stratiform rainfall constituted the dominant rainfall type across all locations, accounting for approximately 65–85% of total rainfall by volume and frequency, thereby producing prolonged periods of background attenuation that reduce satellite link availability and Quality of Service (QoS). Although convective rainfall events (showers and thunderstorms) occurred less frequently, they generated higher rain rates that produced severe, short-duration signal fading capable of exceeding conventional fade margins, particularly in the coastal regions.
The findings demonstrate that rain fade over Nigeria exhibits strong spatial and interannual variability, making generalized global prediction models insufficient without local calibration. The study establishes that coastal satellite earth stations are considerably more vulnerable to rain-induced signal degradation than inland stations due to higher rainfall intensity and more frequent convective events. Consequently, reliable satellite communication system design in tropical environments requires location-specific rainfall statistics, adaptive fade mitigation techniques, increased fade margins for coastal regions, and site diversity strategies. The outcomes of this research provide valuable localized propagation data that can improve rain attenuation prediction, satellite link budgeting, and the overall reliability of high-frequency satellite communication systems operating in Nigeria and similar tropical climates
Keywords
Fade, Rainfall, Satellite, Communication, and Frequency
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References
1. Misra, D., Misra, D. K., & Tripathi, S. P. (2013). Satellite communication advancement, issues, challenges and applications. International Journal of Advanced Research in Computer and Communication Engineering, 2(4), 1681-1686 [Google Scholar] [Crossref]
2. Gurbet, Y. S., & Doğu, S. (2026). Comprehensive review of ku, k, and ka band antenna designs: Applications in cubesats. International Journal of Aeronautical and Space Sciences, 27(1), 447-496 [Google Scholar] [Crossref]
3. Giannetti, F., & Reggiannini, R. (2021). Opportunistic rain rate estimation from measurements of satellite downlink attenuation: A survey. Sensors, 21(17), 5872. [Google Scholar] [Crossref]
4. Kotamraju, S. K., & Korada, C. S. K. (2019). Precipitation and other propagation impairments effects at microwave and millimeter wave bands: a mini survey. Acta Geophysica, 67(2), 703-719. [Google Scholar] [Crossref]
5. Oguchi, T. (2005). Electromagnetic wave propagation and scattering in rain and other hydrometeors. Proceedings of the IEEE, 71(9), 1029-1078. [Google Scholar] [Crossref]
6. Ukommi, U., Ekanem, K., Ubom, E., & Udofia, K. (2023). Evaluation of rainfall rates and rain-induced signal attenuation for satellite communication in the South-South Region of Nigeria. Nigerian Journal of Technology, 42(4), 472-477. [Google Scholar] [Crossref]
7. Kodheli, O., Lagunas, E., Maturo, N., Sharma, S. K., Shankar, B., Montoya, J. F. M., ... & Goussetis, G. (2020). Satellite communications in the new space era: A survey and future challenges. IEEE Communications Surveys & Tutorials, 23(1), 70-109. [Google Scholar] [Crossref]
8. Greenberg, E., & Klodzh, E. (2025, September). Challenges and Potential Approaches in Propagation Modeling of High Frequencies for 6G Networks. In 2025 IEEE-APS Topical Conference on Antennas and Propagation in Wireless Communications (APWC) (pp. 108-113). IEEE. [Google Scholar] [Crossref]
9. Alozie, E., Abdulkarim, A., Abdullahi, I., Usman, A. D., Faruk, N., Olayinka, I. F. Y., ... & Taura, L. S. (2022). A review on rain signal attenuation modeling, analysis, and validation techniques: Advances, challenges, and future direction. Sustainability, 14(18), 11744. [Google Scholar] [Crossref]
10. Ojo, J. S., Sunday, I. O., & Olurotimi, E. O. (2023). Influence of wind speed on rain-based attenuation at Ku-band for earth-satellite links in Nigeria. Indonesian Journal of Electrical Engineering and Computer Science, 29(3): 1529-1541 [Google Scholar] [Crossref]
11. International Telecommunication Union, http://www.itu.Int’l. [Google Scholar] [Crossref]
12. Recommendation ITU-R P.530-16 (07/2015), “Propagation data and prediction methods required forthe design of terrestrial line of sight systems,” July 2015. [Google Scholar] [Crossref]
13. Garcia-Lopez, J.A., Hemando, J.M., and Selga, J.M. (1988). Simple rain attenuation prediction methodfor Satellite links, IEEE Trans. on Ant. and Prop. vol. 36, no. 3. [Google Scholar] [Crossref]
14. Abayomi, Y. and Hajikhamis, N. H. (2012) Rain Attenuation Modelling and Mitigation in the Tropics: Brief Review, International Journal of Electrical and Computer Engineering, vol. 2, no. 6, pp. 748-757. [Google Scholar] [Crossref]
15. Ojo, J.S., Ajewole, M.O. and Sarka, S.K. (2008) Rain rate and rain attenuation prediction for satellite communication in Ku and Ka bands over Nigeria. Progress in electromagnetic research, B. pp. 217-223. [Google Scholar] [Crossref]
16. Svjatogor, L., (1985). Prostranstvennaia korelacia vypadenjija dozdjej vdol zemnoj poverchnostji (in Russian). In: Symposium Expertov Stran Uchastnic Programmy INTERKOSMOS (Interkosmos Symposium, Theme 5 of the Established Telecommunication Working Group, Dresden, GDR). [Google Scholar] [Crossref]
17. Cost Project 255 (2022) Radio wave Propagation Modeling for Satcom Services at Ku band and Above Final Report, ESA Publication Division. 23(72): (213-535). [Google Scholar] [Crossref]
18. Akiyemi, G. (2020). Estimation of Rain Attenuation at C, Ku, Ka, And V-Bands for Satellite Links in Nigeria. Master's Degree Thesis, Redeemers University, Ede, Nigeria. [Google Scholar] [Crossref]
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