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Evaluating the influence of turbulence models used in computational fluid dynamics for the prediction of airflows inside poultry houses

机译:评估计算流体动力学中使用的湍流模型的影响,以预测家禽屋内的气流

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There are various turbulence models in the computational fluid dynamics (CFD) literature but none has so far proven to be universally applicable. Accurate simulations require the proper choice of model appropriate for each particular situation. In this study, the performance of three types of k-c turbulence model, the standard k-epsilon, renormalisation group (RNG) k-epsilon, and realisable k-epsilon, were evaluated for their ability to accurately simulate the internal turbulent flow of a poultry house. Each model's accuracy was analysed by comparing predicted and experimental results, and its performance was assessed using the coefficient of determination (r(2)), the root mean square error to the standard deviation ratio (RSR), and a Taylor diagram, which provides a concise statistical summary of how well the correlation (r) and standard deviation (SD) patterns match. The RSR values obtained for air temperature and airspeed were 0.57 and 0.19, 0.30 and 0.16, and 0.64 and 0.23 for the standard k-epsilon, RNG k-epsilon, and Realizable k-epsilon models, respectively, and showed that the RNG k-epsilon model predicted the airspeed and air temperature best. Other models also provided good results, particularly in predicting airspeed; however, their air temperature predictions were not as accurate as those of the RNG k-epsilon model. The results showed that RNG k-epsilon presented the best results overall, whilst realisable k-epsilon did not meet with our expectations. (C) 2019 IAgrE. Published by Elsevier Ltd. All rights reserved.
机译:计算流体动力学(CFD)文献中有各种湍流模型,但迄今为止已被证明是普遍适用的。 Accurate simulations require the proper choice of model appropriate for each particular situation.在该研究中,评估了三种KC湍流模型,标准K-Epsilon,重新定位组(RNG)K-Epsilon和可实现的K-Epsilon的性能,以便他们准确地模拟家禽的内部湍流流动的能力房子。通过比较预测和实验结果分析每个模型的准确性,并使用测定系数(R(2)),标准偏差比(RSR)的根均方误差和泰勒图来评估其性能简要统计摘要相关性(R)和标准偏差(SD)模式匹配的匹配。用于空气温度和空速获得的RSR值分别为0.57和0.19,0.16和0.64和0.23,分别用于标准K-Epsilon,RNG K-Epsilon和可实现的K-Epsilon模型,并显示RNG k- Epsilon模型预测了最佳空速和空气温度。其他模型还提供了良好的效果,特别是在预测空速方面;然而,它们的空气温度预测与RNG K-EPSILON模型的空气温度预测并不准确。结果表明,RNG K-Epsilon整体呈现了最佳结果,而可实现的K-Epsilon没有符合我们的期望。 (c)2019年IAGRE。 elsevier有限公司出版。保留所有权利。

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