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Computational Fluid Dynamics Model for Air Velocity through a Poultry Transport Trailer in a Holding Shed

机译:通过家禽运输拖车的空气速度计算流体动力学模型

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The configuration of cooling systems in commercial holding sheds, where live broilers wait for slaughter, varies between processing plants, with cooling system efficacies largely unknown. A computationalfluid dynamics (CFD) model was developed to simulate airflow through cage modules in a poultry trailer in a typical holding shed configuration. Two alternative design configurations were simulated in order to improve the air velocity profiles for better cooling performance. Experimental data were collected within modules in a poultry trailer, parked in an existing commercial holding shed during warm summer conditions. Results from the CFD model had reasonable agreement with measured field data. Simulated air velocities were mostly within one standarddeviation of measured values. Simulation of airflow through modules in the original configuration showed that less than 20% of air mass flow from the fans actually travelled through the bird-occupied space. Module tiers experienced different amount of airflow penetration due to the ad hoc positioning/alignment of the fans relative to the modules. In the original industry configuration, fans were in fixed positions and the number of fans and their centerline discharge axes did not align with the moduleson the trailer. Regions not aligned with the faces of the fans, such as the uppermost and bottommost tiers, and horizontal locations offset from the fans, received the least airflow through the modules. Sections of modules experienced lower air velocitywith increasing distance from the fans. Simulation of one design alternative (which added additional fans so that a fan was centered on each row) indicated an improved fan airflow that moved through the cage of 3.08 kg/s and 3.05 kg/s, compared to 1.52kg/s and 2.15 kg/s used in the original design. The increased air velocity using the alternative design illustrates the potential improvement in cooling. This research showed that a CFD model is an effective tool to simulate conditions on poultry trailers in holding sheds to explore various holding shed cooling configurations and strategies.
机译:在商业持有棚子中的冷却系统的配置,其中Live Broilers等待屠宰,在加工厂之间变化,具有冷却系统效率主要是未知的。开发了一种计算流动动力学(CFD)模型,以通过典型的持有棚配置模拟轿厢模块通过笼式模块来模拟气流。模拟了两种替代设计配置,以改善空气速度曲线以获得更好的冷却性能。在家禽拖车中的模块内收集了实验数据,停放在温暖的夏季条件下的现有商业持有棚中。 CFD模型的结果与测量的现场数据有合理的协议。模拟空气速度主要在测量值的一个标准化范围内。原始配置中的模块模拟​​气流的仿真显示,小于20%的风扇从粉丝实际上穿过鸟类空间。由于风扇相对于模块的ad hoc定位/对准,模块层由于ad hoc定位/对准而经历了不同的气流渗透。在原始行业配置中,风扇处于固定位置,风扇的数量及其中心线排放轴与模块挂架不保持一致。没有与风扇的面部保持一致的区域,例如最上面和最上层的层,以及偏离风扇的水平位置,接收到通过模块的最少的气流。模块的部分经历了较低的空气速度,距离风扇的距离增加。仿真一个设计替代方案(增加了额外的风扇,使风扇以每行为中心)表示改进的风扇气流,其通过3.08kg / s和3.05kg / s的笼子移动,而1.52kg / s和2.15千克相比/ s用于原始设计。使用替代设计的增加的空气速度显示了冷却的潜在改善。这项研究表明,CFD模型是模拟家禽拖车在持有棚子的条件的有效工具,以探索各种持有棚的冷却配置和策略。

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