密闭式笼养蛋鸡舍秋季热环境数值模拟与优化
作者:
作者单位:

1.华中农业大学工学院,武汉430070;2.华中农业大学动物科学技术学院、动物医学院,武汉430070;3.武汉软件工程职业学院(武汉开放大学),武汉430205

作者简介:

周健伟,E-mail:1254825924@qq.com

通讯作者:

王树才,E-mail:wsc01@mail.hzau.edu.cn

中图分类号:

S817.3

基金项目:

2024年湖北省科技人才服务企业项目(2024DJC024)


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

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    摘要:

    为优化秋季纵向通风模式下的密闭式笼养蛋鸡舍热环境,通过计算流体力学(computational fluid dynamics, CFD)模拟当前蛋鸡舍的温度场、相对湿度场及空气流速场分布状况,对数值模型进行准确度验证,并通过17组正交仿真试验求解通风设备参数(前山墙隧道进气口导流板夹角θ1、侧墙隧道进气口夹角θ2、末端单个负压风机的通风量Q)处于3个不同水平时鸡笼区域的平均温度-湿度-风速指数(temperature-humidity-velocity index,THVI)及变异系数CVTHVI(coefficient of variation of THVI)。结果显示:笼间通道设置的24个验证点的温度、相对湿度和空气流速的平均相对误差分别为0.38%、0.52%、4.62%,数值模型准确度较高;而通风设备参数θ1θ2Q分别取值10°、90°、42 000 m3/h时,鸡笼区域气流场平均THVI和变异系数CVTHVI分别为25.65和1.64%,相较原通风方案分别下降1.61%和23.93%,有利于提升蛋鸡舍鸡笼区域的热环境适宜度及均衡性。

    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.

    图1 鸡舍整体布局Fig.1 Overall layout of chicken house
    图2 验证点分布示意图Fig.2 Schematic diagram of verification point distribution
    图3 纵向通风模式下运行的通风设备Fig.3 Ventilation equipment operating in vertical ventilation mode
    图4 鸡笼区域多孔介质模拟Fig.4 Simulation of porous media in chicken cage area
    图5 金属格栅网板多孔介质模拟Fig.5 Simulation of porous media of metal grid mesh board
    图6 温度、相对湿度和空气流速测试值与模拟值对比Fig.6 Comparison between measured values and simulated values
    图7 参考平面位置Fig.7 Reference planes position
    图8 空气流速分布云图Fig.8 Cloud map of airflow velocity distribution
    图9 温度分布云图Fig.9 Cloud map of temperature distribution
    图10 相对湿度分布云图Fig.10 Cloud map of relative humidity distribution
    图11 因素θ1和θ2交互作用的响应曲面Fig.11 Response surface of the interaction between factors θ1 and θ2
    图12 鸡笼区域ITHV云图Fig.12 ITHV cloud map of chicken cage areas
    图13 前山墙隧道进气口空气迹线Fig.13 Air trace at the intake of the front mountain wall tunnel
    表 1 网格独立性检验结果Table 1 Grid independence test results
    表 2 鸡舍数值模拟边界条件Table 2 Numerical simulation boundary conditions of chicken house
    表 4 拟合表达式模型方差分析Table 4 Variance analysis of fitting expression model
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引用本文

周健伟,魏泽彬,王树才,龚东军.密闭式笼养蛋鸡舍秋季热环境数值模拟与优化[J].华中农业大学学报,2025,44(2):49-61

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  • 收稿日期:2025-01-07
  • 在线发布日期: 2025-04-02
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