Investigation of Ka-band satellite communication propagation in equatorial regions

Future satellite communication (SatCom) systems operating at high frequencies (Ka-band and above) are expected to suffer from deep signal fades due to rain, particularly in tropical/equatorial regions. Accurate satellite propagation channel modeling requires the knowledge of radio channel characteri...

Full description

Saved in:
Bibliographic Details
Main Authors: Jong, Siatling, Lam, Hong Yin, Din, Jafri, D'Amico, Michele M. G. D'Amico
Format: Article
Published: Asian Research Publishing Network (ARPN) 2015
Subjects:
Online Access:http://eprints.utm.my/id/eprint/56055/
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Universiti Teknologi Malaysia
id my.utm.56055
record_format eprints
spelling my.utm.560552017-02-15T00:37:22Z http://eprints.utm.my/id/eprint/56055/ Investigation of Ka-band satellite communication propagation in equatorial regions Jong, Siatling Lam, Hong Yin Din, Jafri D'Amico, Michele M. G. D'Amico TK Electrical engineering. Electronics Nuclear engineering Future satellite communication (SatCom) systems operating at high frequencies (Ka-band and above) are expected to suffer from deep signal fades due to rain, particularly in tropical/equatorial regions. Accurate satellite propagation channel modeling requires the knowledge of radio channel characteristics with respect to the peculiarities of tropical precipitation. The European Space Agency (ESA) has recently funded a Ka-band propagation measurement campaign over Peninsular Malaysia that exploits the Syracuse-3A satellite (beacon frequency 20.245 GHz). The main objective of this campaign is to collect actual propagation Ka-band signal measurements in a heavy rain region with the aim of assessing and improving currently available statistical models of rain fade dynamic as well as evaluating the performance of site diversity and time diversity techniques. Some results relative to first- (i.e. cumulative distribution function of attenuation) and second-order (i.e. fade duration and fade slope) statistics of rain attenuation are reported based on the basis of the simulation using weather radar data, the prediction of the Stratiform convective- Synthetic Storm Technique (SC-SST) model, ITU-R recommendation and comparison of measured statistics from the literature. The discrepancy among the predicted results implies that it is important to validate the accuracy of current radio channel prediction models using actual experimental data. The experimental results of this campaign will eventually be submitted to the International Telecommunication Union-Radiocommunication Sector (ITU-R) for the benefit of the scientific community, specifically in heavy rain regions Asian Research Publishing Network (ARPN) 2015 Article PeerReviewed Jong, Siatling and Lam, Hong Yin and Din, Jafri and D'Amico, Michele M. G. D'Amico (2015) Investigation of Ka-band satellite communication propagation in equatorial regions. ARPN Journal of Engineering and Applied Sciences, 10 (20). pp. 9795-9799. ISSN 1819-6608
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Jong, Siatling
Lam, Hong Yin
Din, Jafri
D'Amico, Michele M. G. D'Amico
Investigation of Ka-band satellite communication propagation in equatorial regions
description Future satellite communication (SatCom) systems operating at high frequencies (Ka-band and above) are expected to suffer from deep signal fades due to rain, particularly in tropical/equatorial regions. Accurate satellite propagation channel modeling requires the knowledge of radio channel characteristics with respect to the peculiarities of tropical precipitation. The European Space Agency (ESA) has recently funded a Ka-band propagation measurement campaign over Peninsular Malaysia that exploits the Syracuse-3A satellite (beacon frequency 20.245 GHz). The main objective of this campaign is to collect actual propagation Ka-band signal measurements in a heavy rain region with the aim of assessing and improving currently available statistical models of rain fade dynamic as well as evaluating the performance of site diversity and time diversity techniques. Some results relative to first- (i.e. cumulative distribution function of attenuation) and second-order (i.e. fade duration and fade slope) statistics of rain attenuation are reported based on the basis of the simulation using weather radar data, the prediction of the Stratiform convective- Synthetic Storm Technique (SC-SST) model, ITU-R recommendation and comparison of measured statistics from the literature. The discrepancy among the predicted results implies that it is important to validate the accuracy of current radio channel prediction models using actual experimental data. The experimental results of this campaign will eventually be submitted to the International Telecommunication Union-Radiocommunication Sector (ITU-R) for the benefit of the scientific community, specifically in heavy rain regions
format Article
author Jong, Siatling
Lam, Hong Yin
Din, Jafri
D'Amico, Michele M. G. D'Amico
author_facet Jong, Siatling
Lam, Hong Yin
Din, Jafri
D'Amico, Michele M. G. D'Amico
author_sort Jong, Siatling
title Investigation of Ka-band satellite communication propagation in equatorial regions
title_short Investigation of Ka-band satellite communication propagation in equatorial regions
title_full Investigation of Ka-band satellite communication propagation in equatorial regions
title_fullStr Investigation of Ka-band satellite communication propagation in equatorial regions
title_full_unstemmed Investigation of Ka-band satellite communication propagation in equatorial regions
title_sort investigation of ka-band satellite communication propagation in equatorial regions
publisher Asian Research Publishing Network (ARPN)
publishDate 2015
url http://eprints.utm.my/id/eprint/56055/
_version_ 1643653981677813760