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Study to identify computational fluid dynamics models for use in determining HVAC duct fitting loss coefficients

机译:研究识别用于确定HVAC管道拟合损耗系数的计算流体动力学模型

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摘要

This article presents results from a systematic study to establish whether computational fluid dynamics techniques are capable of predicting pressure drop in close-coupled five-gore elbows having nominal diameters of 203mm (8 in.) and turning radii r/D = 1.5. The close-coupled elbow combinations comprised either a Z-shape or a U-shape. In every instance the duct length separating the center-points of the elbows was systematically varied. An experimental program was likewise conducted to verify the computational fluid dynamics predictions, and data from the measurements are included. Zero-length pressure loss coefficients were predicted using five two-equations Eddy Viscosity Models including the standard k-epsilon, the Realizable k-epsilon, RNG k-epsilon, standard k-omega, and SST k-omega models, as well as the Reynolds Stress Model, and compared to the experimental data. The two-equation turbulence models predicted incorrect trends when applied to flow in U- and Z-configuration ducts. However, the Reynolds Stress Models with enhanced wall treatment was generally able to correctly predict elbow loss coefficients with less than 15% of error.
机译:本文提出了系统研究的结果,以确定计算流体动力学技术是否能够预测具有标称直径为203mm(8英寸)的近距离直径的近耦合的五戈戈尔肘部的压降和转向半径R / D = 1.5。紧密耦合的弯头组合包括Z形或U形。在各种情况下,系统地改变了分离肘部中心点的管道长度。同样进行了实验程序以验证计算流体动力学预测,并且包括来自测量的数据。使用包括标准K-Epsilon,可实现的K-Epsilon,RNG K-Epsilon,标准K-Omega和SSTK-OMEGA模型的五种两方程涡流模型预测零长度压力损失系数。以及Reynolds压力模型,与实验数据相比。双等式湍流模型在施加到U型和Z配置管道中时预测了不正确的趋势。然而,具有增强墙面处理的雷诺应力模型通常能够正确地预测弯头损耗系数,误差的15%。

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