The use of active sonar to study cetaceans

Cetacean species face serious challenges worldwide due to the increasing noise pollution brought to their environment by human activities such as seismic exploration. Regulation of these activities is vaguely defined and uncoordinated. Visual observations and passive listening devices, aimed at prev...

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Bibliographic Details
Main Author: Bernasconi, Matteo
Other Authors: Brierley, Andrew, Nøttestad, Leif
Format: Doctoral or Postdoctoral Thesis
Language:English
Published: University of St Andrews 2012
Subjects:
Online Access:http://hdl.handle.net/10023/2580
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spelling ftstandrewserep:oai:research-repository.st-andrews.ac.uk:10023/2580 2023-07-02T03:32:14+02:00 The use of active sonar to study cetaceans Bernasconi, Matteo Brierley, Andrew Nøttestad, Leif 174 2012-05-02T14:20:08Z application/pdf http://hdl.handle.net/10023/2580 en eng University of St Andrews The University of St Andrews Institute of Marine Research, Bergen (Norway) http://hdl.handle.net/10023/2580 Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported http://creativecommons.org/licenses/by-nc-nd/3.0/ Active acoustics Sonar Cetaceans Target strength Methods Conservation Mitigation QL737.C4B4 Cetacea--Detection Cetacea--Conservation Thesis Doctoral PhD Doctor of Philosophy 2012 ftstandrewserep 2023-06-13T18:30:42Z Cetacean species face serious challenges worldwide due to the increasing noise pollution brought to their environment by human activities such as seismic exploration. Regulation of these activities is vaguely defined and uncoordinated. Visual observations and passive listening devices, aimed at preventing conflicts between human wealth and cetaceans’ health have some fundamental limitations and may consequently fail their mitigation purposes. Active sonar technology could be the optimal solution to implement mitigation of such human activities. In my thesis, the proper sonar unit was used to test the feasibility to detect cetaceans in situ. Omnidirectional sonars could be the optimal solution to monitor the presence of cetaceans in the proximity of potential danger areas. To use this class of sonar in a quantitative manner, the first step was to develop a calibration method. This thesis links in situ measurements of target strength (TS) with variation trends linked to the behavior, morphology and physiology of cetacean. The butterfly effect of a cetacean’s body was described for a fin whale insonified from different angles. A relationship between whale respiration and TS energy peaks was tested through a simple prediction model which seems very promising for further implementation. The effect of lung compression on cetacean TS due to increasing depth was tested through a basic mathematical model. The model fit the in situ TS measurements. TS measurements at depth of a humpback whale, when post-processed, correspond to TS measurements recorded at the surface. Sonar technology is clearly capable of detecting whale foot prints around an operating vessel. Sonar frequency response shows that frequencies between 18 and 38 kHz should be employed. This work has established a baseline and raised new questions so that active sonar can be developed and employed in the best interest for the whales involved in potentially harmful conflicts with man. Doctoral or Postdoctoral Thesis Fin whale Humpback Whale University of St Andrews: Digital Research Repository
institution Open Polar
collection University of St Andrews: Digital Research Repository
op_collection_id ftstandrewserep
language English
topic Active acoustics
Sonar
Cetaceans
Target strength
Methods
Conservation
Mitigation
QL737.C4B4
Cetacea--Detection
Cetacea--Conservation
spellingShingle Active acoustics
Sonar
Cetaceans
Target strength
Methods
Conservation
Mitigation
QL737.C4B4
Cetacea--Detection
Cetacea--Conservation
Bernasconi, Matteo
The use of active sonar to study cetaceans
topic_facet Active acoustics
Sonar
Cetaceans
Target strength
Methods
Conservation
Mitigation
QL737.C4B4
Cetacea--Detection
Cetacea--Conservation
description Cetacean species face serious challenges worldwide due to the increasing noise pollution brought to their environment by human activities such as seismic exploration. Regulation of these activities is vaguely defined and uncoordinated. Visual observations and passive listening devices, aimed at preventing conflicts between human wealth and cetaceans’ health have some fundamental limitations and may consequently fail their mitigation purposes. Active sonar technology could be the optimal solution to implement mitigation of such human activities. In my thesis, the proper sonar unit was used to test the feasibility to detect cetaceans in situ. Omnidirectional sonars could be the optimal solution to monitor the presence of cetaceans in the proximity of potential danger areas. To use this class of sonar in a quantitative manner, the first step was to develop a calibration method. This thesis links in situ measurements of target strength (TS) with variation trends linked to the behavior, morphology and physiology of cetacean. The butterfly effect of a cetacean’s body was described for a fin whale insonified from different angles. A relationship between whale respiration and TS energy peaks was tested through a simple prediction model which seems very promising for further implementation. The effect of lung compression on cetacean TS due to increasing depth was tested through a basic mathematical model. The model fit the in situ TS measurements. TS measurements at depth of a humpback whale, when post-processed, correspond to TS measurements recorded at the surface. Sonar technology is clearly capable of detecting whale foot prints around an operating vessel. Sonar frequency response shows that frequencies between 18 and 38 kHz should be employed. This work has established a baseline and raised new questions so that active sonar can be developed and employed in the best interest for the whales involved in potentially harmful conflicts with man.
author2 Brierley, Andrew
Nøttestad, Leif
format Doctoral or Postdoctoral Thesis
author Bernasconi, Matteo
author_facet Bernasconi, Matteo
author_sort Bernasconi, Matteo
title The use of active sonar to study cetaceans
title_short The use of active sonar to study cetaceans
title_full The use of active sonar to study cetaceans
title_fullStr The use of active sonar to study cetaceans
title_full_unstemmed The use of active sonar to study cetaceans
title_sort use of active sonar to study cetaceans
publisher University of St Andrews
publishDate 2012
url http://hdl.handle.net/10023/2580
op_coverage 174
genre Fin whale
Humpback Whale
genre_facet Fin whale
Humpback Whale
op_relation http://hdl.handle.net/10023/2580
op_rights Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported
http://creativecommons.org/licenses/by-nc-nd/3.0/
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