Numerical simulation and optimization of thermal environment in a closed cage-rearing layer house in autumn
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Affiliation:

1.College of Engineering,Huazhong Agricultural University,Wuhan 430070,China;2.College of Animal Science and Technology and College of Veterinary Medicine, Huazhong Agricultural University,Wuhan 430070,China;3.Wuhan Vocational College of Software and Engineering(Wuhan Open University), Wuhan 430205,China

Clc Number:

S817.3

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    Abstract:

    The distribution of the temperature field, relative humidity field, and airflow velocity field in the current layer house was simulated with computational fluid dynamics (CFD) to optimize the thermal environment in a closed cage-rearing layer house under the mode of vertical ventilation in autumn. The accuracy of the numerical model was verified. The average THVI (temperature-humidity-velocity index) and coefficient of variation (CVTHVI) of the cage-rearing areas were calculated for the parameters of ventilation equipment including the angle of the guide plate at the front mountain wall tunnel inlet(θ1), the angle of the guide plate at the side wall tunnel inlet(θ2) and ventilation volume of a suction fan at the end(Q) at three different levels by conducting 17 sets of orthogonal simulation experiments. The results showed that the average relative error of temperature, relative humidity, and airflow velocity at the 24 verification points set on the aisle of cage was 0.38%, 0.52%, and 4.62%, respectively, indicating that the accuracy of the numerical model is high. When the parameters of ventilation equipment θ1,θ2 and Q were set to 10°,90° and 42 000 m3/h, the average THVI and coefficient of variation CVTHVI of the airflow field in the cage-rearing areas was 25.65 and 1.64%, 1.61% and 23.93% lower than that of the original scheme of ventilation, beneficial for improving the suitability and balance of the thermal environment in the cage-rearing areas of the layer house.

    Fig.1 Overall layout of chicken house
    Fig.2 Schematic diagram of verification point distribution
    Fig.3 Ventilation equipment operating in vertical ventilation mode
    Fig.4 Simulation of porous media in chicken cage area
    Fig.5 Simulation of porous media of metal grid mesh board
    Fig.6 Comparison between measured values and simulated values
    Fig.7 Reference planes position
    Fig.8 Cloud map of airflow velocity distribution
    Fig.9 Cloud map of temperature distribution
    Fig.10 Cloud map of relative humidity distribution
    Fig.11 Response surface of the interaction between factors θ1 and θ2
    Fig.12 ITHV cloud map of chicken cage areas
    Fig.13 Air trace at the intake of the front mountain wall tunnel
    Table 1 Grid independence test results
    Table 2 Numerical simulation boundary conditions of chicken house
    Table 4 Variance analysis of fitting expression model
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周健伟,魏泽彬,王树才,龚东军. Numerical simulation and optimization of thermal environment in a closed cage-rearing layer house in autumn[J]. Jorunal of Huazhong Agricultural University,2025,44(2):49-61.

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History
  • Received:January 07,2025
  • Online: April 02,2025
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