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Feeding activity and opercular pressure transients in Atlantic salmon (Salmo salar L.): application to feeding management in fish farming

  • Fish Telemetry
  • Conference paper
Developments in Fish Telemetry

Part of the book series: Developments in Hydrobiology 195 ((DIHY,volume 195))

Abstract

Ecological and economical sustainability of marine aquaculture operations depend on proper feeding management. Feed wastage from overfeeding is a source of pollution, represents futile use of precious marine resources, and undermines the economic viability of operations. Additionally, underfeeding reduces growth and fish welfare. Finding an optimal feeding regime in terms of temporal and spatial distribution of the feed ration require intimate knowledge of the individual feeding behaviour of fish sustaining intensive culturing conditions. Fish telemetry has proved to be a valuable tool for studying spatial behaviour in sea cages, however there are currently no practical methods available with respect to detection of actual feed intake in fish on the individual level. The present study investigates pressure transients arising in the opercular cavity of farmed Atlantic salmon (Salmo salar L.) in connection with feeding, and whether such measurements can serve as an indication of feed ingestion. A technical solution to the sensing problem based on a differential pressure transducer is presented along with typical pressure signal traces obtained during feeding in a hard wire tank experiment. Measurements showed considerable variation of sub-ambient pressure transients (1.5 kPa ± 0.95) and their duration (519 ms ± 117), suggesting that the fish modulates its strike intensity depending on the particular feeding situation. Despite variations in scale, opercular pressure waveforms have distinct structural features that repeat between feeding instants. From a signal processing point of view waveforms provide sufficient information with respect to isolation and detection of feeding incidents, which is important with respect to a potential implementation of the sensing principle in a telemetry tag design. Issues regarding development and application of a telemetry system based on this sensing principle are discussed.

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References

  • Alexander, R. McN., 1967. Functional Design in Fishes. Hutchinson & Co, London.

    Google Scholar 

  • Alver, M. O., J. A. Alfredsen & T. Sigholt, 2004. Dynamic modelling of pellet distribution in Atlantic salmon (Salmo salar L.) cages. Aquacultural Engineering 31: 51–72.

    Article  Google Scholar 

  • Ang, K. P. & R. J. Petrell, 1997. Control of feed dispensation in seacages using underwater video monitoring: effects on growth and food conversion. Aquacultural Engineering 16: 45–62.

    Article  Google Scholar 

  • Baras, E. & J. P. Lagardère, 1995. Fish telemetry in aquaculture: review and perspectives. Aquaculture International 3: 77–102.

    Article  Google Scholar 

  • Begout Anras, M. L., S. Kadri, J. E. Juell & T. Hansen, 2000. Measuring individual and group swimming behaviour under production densities: test of a 3D multiple fish acoustic positioning system in a sea cage. In Moore, A & I. A. Russel (eds), Advances in fish telemetr. Centre for Environment, Fisheries and Aquaculture Sci., Lowestoft Laboratory, UK, 75–78.

    Google Scholar 

  • Cooke, S. J., E. B. Thorstad & S. G. Hinch, 2004. Activity and energetics of free-swimming fish: insights from electromyogram telemetry. Fish and Fisheries 5: 21–52.

    Article  Google Scholar 

  • Houlihan, D., T. Boujard & M. Jobling, 2001. Food Intake in Fish. Blackwell Science Ltd., London.

    Google Scholar 

  • Jobling, M., D. Covès, B. Damsgård, H. R. Kristiansen, J. Koskela, T. E. Petursdottir, S. Kadri & O. Gudmundsson, 2001. Techniques for measuring feed intake. In Houlihan, D., T. Boujard & M. Jobling (eds), Food Intake in Fish. Blackwell Science Ltd, London, 49–87.

    Google Scholar 

  • Juell, J. E. & H. Westerberg, 1993. An ultrasonic telemetric system for automatic positioning of individual fish used to track Atlantic Salmon (Salmo salar L.) in a Sea Cage. Aquacultural Engineering 12: 1–18.

    Article  Google Scholar 

  • McFarlane, W. J., H. Williams, D. Roswell, C. White, R. Gosine, B. Finstad & R. S. McKinley, 2002. Intelligent monitoring systems for aquaculture: enhancing the efficiency of feeding systems. Aquaforum Conference Proceedings January 24–25, Science Council of British Columbia, Vancouver, BC.

    Google Scholar 

  • Muller, M., 1989. A quantitative theory of expected volume changes of the mouth during feeding in teleost fishes. Journal of the Zoological Society of London 217: 639–662.

    Article  Google Scholar 

  • Nemeth, D. H., 1997. Modulation of buccal pressure during prey capture in Hexagrammos decagrammus (Teleostei: Hexagrammidae). Journal of Experimental Biology 200: 2145–2154.

    PubMed  Google Scholar 

  • Norton, S. F. & E. L. Brainerd, 1992. Convergence in the feeding mechanics of ecomorphologically similar species in the Centrarchidae and Cichlidae. Journal of Experimental Biology 176: 11–29.

    Google Scholar 

  • Oswald, R. L., 1978. The use of telemetry to study light synchronization with feeding and gill ventilation rates in Salmo trutta. Journal of Fish Biology 13: 729–739.

    Article  Google Scholar 

  • Shelton, G., 1970. The regulation of breathing. In Hoar, W. S. & D. J. Randall (eds), Fish Physiology IV, Academic Press Inc., New York, 293–258.

    Google Scholar 

  • Talbot, C., S. Corneillie & Ø. Korsøen, 1999. Pattern of feed intake in four species of fish under commercial farming conditions: implications for feeding management. Aquaculture Research 30:509–518.

    Article  Google Scholar 

  • Van Leeuwen, J. L., 1984. A quantitative study of flow in prey capture by rainbow trout, Salmo gairdneri with general consideration of the actinopterygian feeding mechanism. Transactions of the Zoological Society of London 37: 171–227.

    Google Scholar 

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Correspondence to Jo Arve Alfredsen .

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© 2007 Springer Science+Business Media B.V.

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Alfredsen, J.A., Holand, B., Solvang-Garten, T., Uglem, I. (2007). Feeding activity and opercular pressure transients in Atlantic salmon (Salmo salar L.): application to feeding management in fish farming. In: Almeida, P.R., Quintella, B.R., Costa, M.J., Moore, A. (eds) Developments in Fish Telemetry. Developments in Hydrobiology 195, vol 195. Springer, Dordrecht. https://doi.org/10.1007/978-1-4020-6237-7_19

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