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Modeling conductive cooling for thermally stressed dairy cows
Institution:1. Electrical Engineering Department, Technology College, Federal University of Rondônia, BR 364, Km 9.5, Porto Velho 76801-059, Brazil;2. Animal Science Department, Júlio de Mesquita Filho São Paulo State University, Via de acesso Prof. Paulo Donato Castellano, Jaboticabal 14884-900, Brazil;3. Department of Biological and Environmental Engineering, Cornell University, Ithaca, NY 14853, USA;1. Department of Engineering, Aarhus University, Blichers Allé 20, P.O. Box 50, 8830 Tjele, Denmark;2. Department of Biological Systems Engineering, University of Wisconsin-Madison, 460 Henry Mall, Madison, 53706 WI, United States;2. AgResearch Ltd., Hamilton 3240, New Zealand;1. College of Water Resources and Civil Engineering, China Agricultural University, Beijing 100083, China;2. Key Laboratory of Agricultural Engineering in Structure and Environment, Ministry of Agriculture and Rural Affairs, Beijing 100083, China;3. Beijing Engineering Research Center on Animal Healthy Environment, Beijing 100083, China
Abstract:Conductive cooling, which is based on direct contact between a cow lying down and a cooled surface (water mattress, or any other heat exchanger embedded under the bedding), allows heat transfer from the cow to the cooled surface, and thus alleviate heat stress of the cow. Conductive cooling is a novel technology that has the potential to reduce the consumption of energy and water in cooling dairy cows compared to some current practices. A three-dimensional conduction model that simulates cooling thermally-stressed dairy cows was developed. The model used a computational fluid dynamics (CFD) method to characterize the air-flow field surrounding the animal model. The flow field was obtained by solving the continuity and the momentum equations. The heat exchange between the animal and the cooled water mattress as well as between the animal and ambient air was determined by solving the energy equation. The relative humidity was characterized using the species transport equation. The conduction 3-D model was validated against experimental temperature data and the agreement was very good (average error is 4.4% and the range is 1.9–8.3%) for a mesh size of 1117202. Sensitivity analyses were conducted between heat losses (sensible and latent) with respect to air temperature, relative humidity, air velocity, and level of wetness of skin surface to determine which of the parameters affect heat flux more than others. Heat flux was more sensitive to air temperature and level of wetness of the skin surface and less sensitive to relative humidity.
Keywords:Conductive cooling  Heat stress  Dairy cows  CFD model  Heat flux
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