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Increased utilization of sensible heat loss mechanisms in high temperature, high humidity conditions

Published online by Cambridge University Press:  18 September 2007

D. Balnave
Affiliation:
Department of Animal Science, University of Sydney, Werombi Road, Camden, New South Wales 2570, Australia
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Abstract

Models of heat loss partition in poultry suggest that, above the zone of thermoneutrality, insensible heat loss increases while sensible heat loss mechanisms decline in importance. Comparison of evaporative and total heat losses at low and high relative humidities suggest this may not be correct at high temperatures and high humidities.

Type
Short paper
Copyright
Copyright © Cambridge University Press 1998

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References

De Shazer, J.A., Jordan, K.A. and Suggs, C.W. (1970) Effect of acclimation on partitioning of heat loss by the laying hen. Transactions of the American Society of Agricultural Engineers 13: 8284CrossRefGoogle Scholar
Farrell, D.J. and Swain, S. (1977) Effects of temperature treatments on the energy and nitrogen metabolism of fed chickens. British Poultry Science 18: 735748CrossRefGoogle ScholarPubMed
Hillman, P.E., Scott, N.R. and van Tienhoven, A. (1985) Physiological responses and adaptations to hot and cold environments. In: Stress Physiology in Livestock, Volume 3, Ponltry (Yousef, M.K., Ed.), CRC Press, Boca Raton, Florida, pp. 171Google Scholar
Okumura, J., Tasaki, I. and Saito, K. (1977) Relation between ambient temperature and relative humidity and wet droppings in chickens. Japanese Poultry Science 14: 217222CrossRefGoogle Scholar
Romijn, C. and Lokhorst, W. (1961) Climate and poultry. Heat regulation in the fowl. Tijdschrift voor Diergeneeskunde 86: 153172Google Scholar
Romijn, C. and Lokhorst, W. (1966) Heat regulation and energy metabolism in the domestic fowl. In: Physiology of the Domesfic Fowl (Horton-Smith, C. and E.C.Amoroso, E.C., Eds), Oliver and Boyd, Edinburgh. pp. 211217Google Scholar
Van Kampen, M. (1974) Physical factors affecting energy expenditure. In: Enera Requirements of Poultry (Morris, T.R. and. Freeman, B.M., Eds), Poultry Science Symposium, Number 9, British Poultry Science LimitedGoogle Scholar
Yeates, N.T.M., Lee, D.H.K. and Hines, H.J.G. (1941) Reactions of domestic fowls to hot temperatures. In: Proceedings of the Royal Society of Queensland 53: 105128CrossRefGoogle Scholar