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International Journal of Poultry Science

Year: 2013 | Volume: 12 | Issue: 10 | Page No.: 590-595
DOI: 10.3923/ijps.2013.590.595
Improving Performance of Laying Hens in Hot Regions by Desert Coolers
Abdur- Rahman, Al- Fataftah and Anas Abdelqader

Abstract: The efficacy of desert coolers to improve thermal responses and performance of laying hens under heat stress conditions was investigated. Two identical layers houses of deep litter system providing 1600 cm2/hen were used. The first house was equipped with a desert cooler while the other was left without control on air temperature (the control treatment). At 32 week of age, 100 hens from 2 commercial lines (Shaver and Hyline) were housed in each house. The average air temperature in the cooled house was 5.4°C lower (p<0.05) than in the control house. Drinking water temperature in the cooled house was 3.4°C lower (p<0.05) than that in the control house. Rectal temperatures of hens in the cooled house were significantly lower than that of the control. Hens housed in the cooled house showed a significant improvement in feed conversion, significant increase in egg production, egg weight, egg mass, eggshell thickness and eggshell density and significant decrease in unmarketable eggs compared to the control hens. Hyline showed higher (p<0.05) egg production than Shaver when ambient temperature was controlled by the desert cooler. Line had no significant effects on egg weight and egg mass. The net income per hen in the cooled house was US $ 6.80/hen compared to US $ 4.20/hen for the controls, which represented a net gain of US $ 2.60/hen more for the desert cooled hens. Based on these results, the use of desert cooler under hot conditions is efficient and economically feasible.

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How to cite this article
Abdur- Rahman, Al- Fataftah and Anas Abdelqader, 2013. Improving Performance of Laying Hens in Hot Regions by Desert Coolers. International Journal of Poultry Science, 12: 590-595.

Keywords: Heat stress, laying hens, desert coolers and egg production

REFERENCES

  • Blem, C.R., 2000. Energy Balance. In: Sturkie's Avian Physiology, Whittow, G.C. (Ed.). 5th Edn., Academic Press, New York, pp: 327-341


  • Carter, T.C., 1975. The hen's egg: Estimation of shell superficial area and egg volume, using measurements of fresh egg weight and shell length and breadth alone or in combination. Br. Poult. Sci., 16: 541-543.
    CrossRef    Direct Link    


  • Cruz, V.F., M. Perissinotto and E. Lucas, 2006. Cooling Livestock Buildings by Pad and Fan Evaporative Cooling System (Pad Cooling). In: Animal Housing in Hot Climates: A Multidisciplinary View, Naas, I.A. (Ed.). CIGR Section II Working Group in Cooperation with Eurageng, Campinas, SP-Brazil, pp: 37-38


  • Dawson, W.R. and G.C. Whittow, 2000. Regulation of Body Temperature. In: Sturkie's Avian Physiology, Whittow, G.C. (Ed.). Academic Press, New York, USA., ISBN: 978-0-12-747605-6, pp: 343-390


  • Etches, R.J., I.M. John and A.M.V. Gibbins, 1995. Behavioural, Physiological, Neuroendocrine and Molecular Responses to Heat Stress. In: Poultry Production in Hot Climates, Daghir, N.J. (Ed.). CAB International, Wallingford, UK., pp: 31-65


  • Ganguly, A. and S. Ghosh, 2007. Modeling and analysis of a fan-pad ventilated floricultural greenhouse. Energy Build., 39: 1092-1097.
    CrossRef    Direct Link    


  • Gutierrez, W.M., W. Min and H.H. Chang, 2009. Effect of chilled drinking water on performance of laying hens during constant high ambient temperature. Asian-Aust. J. Anim. Sci., 22: 694-699.
    Direct Link    


  • Kittas, C., T. Bartzanas and A. Jaffrin, 2003. Temperature gradients in a partially shaded large greenhouse equipped with evaporative cooling pads. Biosyst. Eng., 85: 87-94.
    CrossRef    


  • Lertsatitthanakorn, C., S. Rerngwongwitaya and S. Soponronnarit, 2006. Field experiments and economic evaluation of an evaporative cooling system in a silkworm rearing house. Biosyst. Eng., 93: 213-219.
    CrossRef    Direct Link    


  • Longhouse, A.D., 1963. Poultry Housing-Basic Data Useful for Design Purposes in the Northeastern States. Vol 486, West Virginia University, Agricultural Experiment Station, New Haven, CT


  • NRC, 1994. Nutrient Requirements of Poultry. 9th Edn., National Academic Press, Washington, DC.


  • Odom, T.W., P.C. Harrison and M.J. Darre, 1985. The effects of drinking carbonated water on the egg shell quality of Single Comb White Leghorn hens exposed to high environmental temperature. Poult. Sci., 64: 594-596.
    CrossRef    Direct Link    


  • Puma, M.C., H. Xin, R.S. Gates and D.J. Burnham, 2001. An instrumentation system for studying feeding and drinking behavior of individual poultry. Applied Eng. Agri., 17: 365-374.
    Direct Link    


  • SAS, 2010. SAS OnlineDoc® Version 9.1.3. SAS Institute, Inc., Cary, NC, USA


  • Smith, A.J., 2001. The Tropical Agriculturalist-Poultry. Macmillan Education Ltd., London, UK


  • Star, L., B. Kemp, I. van den Anker and H.K. Parmentier, 2008. Effect of single or combined climatic and hygienic stress in four layer lines: 1. Performance. Poult. Sci., 87: 1022-1030.
    CrossRef    


  • St-Pierre, N.R., B. Cobanov and G. Schnitkey, 2003. Economic losses from heat stress by US livestock industries. J. Dairy Sci., 86: E52-E77.
    CrossRef    Direct Link    


  • Wolfenson, D., Y.F. Frei, N. Snapir and A. Berman, 1981. Heat stress effects on capillary blood flow and its redistribution in the laying hen. Eur. J. Physiol., 390: 86-93.
    CrossRef    Direct Link    


  • Xin, H., R.S. Gates, M.C. Puma and D.U. Ahn, 2002. Drinking water temperature effects on laying hens subjected to warm cyclic environments. Poult. Sci., 81: 608-617.
    Direct Link    

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