Full Text Available

Note: Clicking the button above will open the full text document at the original institutional repository in a new window.

Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica

Studying high-latitude travelling ionospheric disturbances (TIDs) is of importance be-cause they often correspond to space weather events which affect the earth's climate. The South African National Space Agency (SANSA) plans to install a low-powered high frequency (HF) transmitter at the South Pole...

Full description

Saved in:
Bibliographic Details
Main Author: Macwilliam, Kathleen
Other Authors: Schonken, Francois
Format: Thesis
Language:English
Published: Department of Electrical Engineering 2020
Subjects:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1867613317013438464
access_status_str Open Access
author Macwilliam, Kathleen
author2 Schonken, Francois
author_browse Macwilliam, Kathleen
Schonken, Francois
author_facet Schonken, Francois
Macwilliam, Kathleen
author_sort Macwilliam, Kathleen
collection Thesis
description Studying high-latitude travelling ionospheric disturbances (TIDs) is of importance be-cause they often correspond to space weather events which affect the earth's climate. The South African National Space Agency (SANSA) plans to install a low-powered high frequency (HF) transmitter at the South Pole for use in a bistatic ionospheric sounding system intended to detect such TIDs. The aim of this dissertation was to design a suitable transmitter antenna such that propagating skywave signals could successfully be received by the SANAE SuperDARN radar some 2090 km away. A transmitter beacon with an operating frequency of 12.57 MHz and a maximum 1 W power output has already been designed previously for the system. A highly directional antenna was required to reduce interference with another existing SuperDARN radar situated at the South Pole Observatory. A key goal was to transmit as little power as possible, with mainly narrowband antennas being taken into account. Additionally, a wide azimuth beamwidth was desired to allow for the possible illumination of other nearby Antarctic SuperDARN stations. The rest of the parameters were not defined explicitly and were established during the design process. More specifically, the antenna gain, elevation beamwidth and transmitter power required to achieve successful communication had to be determined. A thorough investigation of HF ionospheric propagation was undertaken, with the po-lar ionosphere and its impact on system functionality being of particular concern. Freely available propagation prediction tools were reviewed and ICEPAC was selected for use based on its high-latitude capabilities. It was discovered that the models used in both ICEPAC and the online Virginia Tech SuperDARN ray tracer ignore the presence of the extraordinary wave mode, the significance of which was discussed. The non-deviative radiowave absorption in the D and lower E layers of the ionosphere is one of the most notable contributors to total transmission loss. Consequently, manual calculations of it were done(for both extraordinary and ordinary wave modes) by using the magnetoionic Appleton-Hartree equations in conjunction with relevant ionospheric and geophysical models. These results were used to supplement the transmission losses estimated by ICEPAC to ensure that enough power is supplied to allow for both wave modes to reach the receiver. The properties of the lossy ice ground at the South Pole were researched in depth and a multi-layered substrate ground plane was modelled for use in FEKO simulations. Several antennas were investigated through an iterative design process and a three-element rectangular loop Yagi-Uda was chosen for final consideration. This was because it not only performed the best but was the most compact antenna and allows for easy transportation and construction with minimal equipment. Ultimately, based on the research presented in this dissertation, a final transmitter antenna has been designed which is believed will operate successfully for its intended purpose.
format Thesis
id oai:open.uct.ac.za:11427/32406
institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:34:10.861Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2020
publishDateRange 2020
publishDateSort 2020
publisher Department of Electrical Engineering
publisherStr Department of Electrical Engineering
record_format dspace
source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/32406 Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica Macwilliam, Kathleen Schonken, Francois Kosch, Michael Ward, Jonathan Electrical Engineering Studying high-latitude travelling ionospheric disturbances (TIDs) is of importance be-cause they often correspond to space weather events which affect the earth's climate. The South African National Space Agency (SANSA) plans to install a low-powered high frequency (HF) transmitter at the South Pole for use in a bistatic ionospheric sounding system intended to detect such TIDs. The aim of this dissertation was to design a suitable transmitter antenna such that propagating skywave signals could successfully be received by the SANAE SuperDARN radar some 2090 km away. A transmitter beacon with an operating frequency of 12.57 MHz and a maximum 1 W power output has already been designed previously for the system. A highly directional antenna was required to reduce interference with another existing SuperDARN radar situated at the South Pole Observatory. A key goal was to transmit as little power as possible, with mainly narrowband antennas being taken into account. Additionally, a wide azimuth beamwidth was desired to allow for the possible illumination of other nearby Antarctic SuperDARN stations. The rest of the parameters were not defined explicitly and were established during the design process. More specifically, the antenna gain, elevation beamwidth and transmitter power required to achieve successful communication had to be determined. A thorough investigation of HF ionospheric propagation was undertaken, with the po-lar ionosphere and its impact on system functionality being of particular concern. Freely available propagation prediction tools were reviewed and ICEPAC was selected for use based on its high-latitude capabilities. It was discovered that the models used in both ICEPAC and the online Virginia Tech SuperDARN ray tracer ignore the presence of the extraordinary wave mode, the significance of which was discussed. The non-deviative radiowave absorption in the D and lower E layers of the ionosphere is one of the most notable contributors to total transmission loss. Consequently, manual calculations of it were done(for both extraordinary and ordinary wave modes) by using the magnetoionic Appleton-Hartree equations in conjunction with relevant ionospheric and geophysical models. These results were used to supplement the transmission losses estimated by ICEPAC to ensure that enough power is supplied to allow for both wave modes to reach the receiver. The properties of the lossy ice ground at the South Pole were researched in depth and a multi-layered substrate ground plane was modelled for use in FEKO simulations. Several antennas were investigated through an iterative design process and a three-element rectangular loop Yagi-Uda was chosen for final consideration. This was because it not only performed the best but was the most compact antenna and allows for easy transportation and construction with minimal equipment. Ultimately, based on the research presented in this dissertation, a final transmitter antenna has been designed which is believed will operate successfully for its intended purpose. 2020-11-19T11:39:04Z 2020-11-19T11:39:04Z 2020 2020-11-19T08:19:34Z Master Thesis Masters MSc (Eng) http://hdl.handle.net/11427/32406 eng application/pdf Department of Electrical Engineering Faculty of Engineering and the Built Environment
spellingShingle Electrical Engineering
Macwilliam, Kathleen
Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica
thesis_degree_str Master's
title Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica
title_full Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica
title_fullStr Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica
title_full_unstemmed Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica
title_short Design of an HF transmit antenna for bistatic ionospheric soundings in Antarctica
title_sort design of an hf transmit antenna for bistatic ionospheric soundings in antarctica
topic Electrical Engineering
url http://hdl.handle.net/11427/32406
work_keys_str_mv AT macwilliamkathleen designofanhftransmitantennaforbistaticionosphericsoundingsinantarctica