Bai Hongwu, Zhou Guanghong, Liu Xianjin
Key Laboratory of Meat Processing and Quality Control, Ministry of Education, College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210095, China.
Institute of Food Safety and Nutrition, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, China.
Foods. 2023 Apr 28;12(9):1837. doi: 10.3390/foods12091837.
In this study, we constructed a calculation model to determine the internal temperature field distribution in a medium-sized refrigeration truck with the dimensions of 4.1 m × 2.2 m × 2.2 m. Wind speed, air temperature, and carcass temperature were designated as the initial conditions. The k-ε model of computational fluid dynamics was used to simulate different wind speeds and ventilation duct settings on the carriage. Additionally, under specific boundary conditions, the speed of the air outlet, the types of ventilation ducts, and the carcass loads were all varied to determine the uniformity of the temperature field. The results showed that, when the air outlet speed was 5 m/s, the temperature field in the refrigerated truck was relatively more uniform. The simulated results were in good agreement with the measured results. The average absolute error was 0.35 °C, and the average relative error was 9.23%.
在本研究中,我们构建了一个计算模型,以确定一辆尺寸为4.1米×2.2米×2.2米的中型冷藏车内部的温度场分布。将风速、空气温度和胴体温度指定为初始条件。使用计算流体动力学的k-ε模型来模拟车厢内不同的风速和通风管道设置。此外,在特定边界条件下,改变出风口速度、通风管道类型和胴体负载,以确定温度场的均匀性。结果表明,当出风口速度为5米/秒时,冷藏车内的温度场相对更均匀。模拟结果与测量结果吻合良好。平均绝对误差为0.35℃,平均相对误差为9.23%。