Atmospheric propagation modelling for terrestrial radio frequency communication links in a tropical wet and dry savanna climate

  • Atmospheric impairment-induced attenuation is the prominent source of signal degradation in radio wave communication channels. The computation-based modeling of radio wave attenuation over the atmosphere is the stepwise application of relevant radio propagation models, data, and procedures to effectively and prognostically estimate the losses of the propagated radio signals that have been induced by atmospheric constituents. This contribution aims to perform a detailed prognostic evaluation of radio wave propagation attenuation due to rain, free space, gases, and cloud over the atmosphere at the ultra-high frequency band. This aim has been achieved by employing relevant empirical atmospheric data and suitable propagation models for robust prognostic modeling using experimental measurements. Additionally, the extrapolative attenuation estimation results and the performance analysis were accomplished by engaging different stepwise propagation models and computation parameters often utilized in Earth–satellite and terrestrial communications. Results indicate that steady attenuation loss levels rise with increasing signal carrier frequency where free space is more dominant. The attenuation levels attained due to rain, cloud, atmospheric gases, and free space are also dependent on droplet depths, sizes, composition, and statistical distribution. While moderate and heavy rain depths achieved 3 dB and 4 dB attenuations, the attenuation due to light rainfall attained a 2.5 dB level. The results also revealed that attenuation intensity levels induced by atmospheric gases and cloud effects are less than that of rain. The prognostic-based empirical attenuation modeling results can provide first-hand information to radio transmission engineers on link budgets concerning various atmospheric impairment effects during radio frequency network design, deployment, and management, essentially at the ultra-high frequency band.

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Metadaten
Author:Joseph IsabonaORCiDGND, Agbotiname Lucky ImoizeORCiDGND, Stephen OjoORCiDGND, Cheng-Chi LeeORCiDGND, Chun-Ta LiORCiDGND
URN:urn:nbn:de:hbz:294-90701
DOI:https://doi.org/10.3390/info13030141
Parent Title (English):Information
Publisher:MDPI
Place of publication:Basel
Document Type:Article
Language:English
Date of Publication (online):2022/06/26
Date of first Publication:2022/03/07
Publishing Institution:Ruhr-Universität Bochum, Universitätsbibliothek
Tag:atmospheric gases; cloud; free-space propagation; pathloss measurements; rain attenuation; rain depths; rain rates
Volume:13
Issue:3, Article 141
First Page:141-1
Last Page:141-16
Institutes/Facilities:Lehrstuhl für Digitale Kommunikationssysteme
Dewey Decimal Classification:Allgemeines, Informatik, Informationswissenschaft / Informatik
open_access (DINI-Set):open_access
faculties:Fakultät für Elektrotechnik und Informationstechnik
Licence (English):License LogoCreative Commons - CC BY 4.0 - Attribution 4.0 International