NUMERICAL STUDY OF UNSTEADY AIRFLOW PHENOMENA IN A VENTILATED ROOM

IF 1.3 Q3 THERMODYNAMICS Computational Thermal Sciences Pub Date : 2012-07-03 DOI:10.1615/COMPUTTHERMALSCIEN.2012005093
K. Horikiri, Yufeng Yao, J. Yao
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引用次数: 13

Abstract

Numerical simulation of airflow in an indoor environment has been carried out for forced, natural, and mixed convection modes, respectively, by using the computational fluid dynamics (CFD) approach of solving the Reynolds-averaged Navier−Stokes equations. Three empty model rooms in two-dimensional configuration were studied first; focusing on the effects of grid refinement, mesh topology, and turbulence model. It was found that structured mesh results were in better agreement with available experimental measurements for all three convection scenarios, while the renormalized group (RNG) к − e turbulence model produced better results for both forced and mixed convections and the shear stress transport (SST) turbulence model for the natural convection prediction. Further studies of air velocity and temperature distributions in a three-dimensional cubic model room with and without an obstacle have shown reasonably good agreement with available test data at the measuring points. CFD results exhibited some unsteady flow phenomena that have not yet been observed or reported in previous experimental studies for the same problem. After analyzing the time history of velocity and temperature data using fast Fourier transformation (FFT), it was found that both air velocity and temperature field oscillated at low frequencies up to 0.4 Hz and the most significant velocity oscillations occurred at a vertical height of an ankle level (0.1 m) from the floor, where temperature oscillation was insignificant. The reasons for this flow unsteadiness were possibly a higher Grashof number, estimated at 0.5 × 106 based inflow conditions, and thus strong buoyancy driven effects caused the oscillations in the flow field. The appearance of an obstacle in the room induced flow separation at its sharp edges and this would further enhance the oscillations due to the unsteady nature of detached shear-layer flow.
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通风室内非定常气流现象的数值研究
利用计算流体动力学(CFD)方法求解reynolds -average Navier - Stokes方程,分别对室内环境中的强制对流、自然对流和混合对流模式进行了数值模拟。首先研究了三个二维构型的空样板房;重点研究网格细化、网格拓扑和湍流模型的影响。结果表明,在三种对流模式下,结构化网格计算结果与现有的实验测量结果吻合较好,而重整化群(RNG)湍流模型对强迫对流和混合对流的预测结果较好,剪切应力输运(SST)湍流模型对自然对流的预测结果较好。在有障碍物和没有障碍物的三维立方模型室内进行的进一步研究表明,风速和温度分布与测点的现有测试数据相当吻合。CFD结果显示了一些非定常流动现象,这些现象在以前的实验研究中没有观察到或报道过。在使用快速傅里叶变换(FFT)分析速度和温度数据的时间历史后,发现空气速度和温度场都在0.4 Hz的低频振荡,最显著的速度振荡发生在距离地板脚踝水平(0.1 m)的垂直高度,温度振荡不明显。这种流动不稳定的原因可能是较高的Grashof数,根据入流条件估计为0.5 × 106,因此强烈的浮力驱动效应导致了流场的振荡。室内障碍物的出现在其尖锐的边缘处引起了流动分离,这将进一步增强由于分离剪切层流动的非定常性而引起的振荡。
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来源期刊
CiteScore
2.70
自引率
6.70%
发文量
36
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