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Numerical study of buoyancy-driven natural ventilation in a simple three-storey atrium building

机译:简单的三层中庭建筑中浮力驱动自然通风的数值研究

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A simple three-storey atrium building was modeled to investigate the development of buoyancy-driven natural ventilation airflows induced by solar radiation and by the heat sources present on each floor of the building using a validated Computational Fluid Dynamics (CFD) model. The Reynolds Averaged Navier–Stokes (RANS) modeling approach with the SST-k-ω turbulence model and the Discrete Transfer Radiation Model (DTRM) was used for the numerical solution. The steady-state governing equations were solved using a commercial CFD solver FLUENT?. The air flow patterns, temperature distributions and the ventilation flow rates as predicted by the CFD model for this case study are presented in this paper. The ventilation flow rates were compared in non-dimensional form with the analytical design curves found in literature developed through the use of an analytical approach for a simple geometry atrium building. It was found that the CFD predictions agreed with the general trends described by the analytical model. The effect of solar intensity on the buoyancy-driven ventilation flow rates and the temperature distributions during the day-light hours and at different geographical locations was also investigated.
机译:对一个简单的三层中庭建筑进行了建模,以使用经过验证的计算流体动力学(CFD)模型研究由太阳辐射和建筑物各层中存在的热源引起的浮力驱动的自然通风气流的发展。数值解法采用具有SST-k-ω湍流模型和离散传递辐射模型(DTRM)的雷诺平均Navier-Stokes(RANS)建模方法。使用商用CFD求解器FLUENT?求解稳态控制方程。本文介绍了由CFD模型预测的气流模式,温度分布和通风流量。将通气流量以无量纲形式与通过使用简单几何中庭建筑的分析方法开发的文献中找到的分析设计曲线进行比较。发现CFD预测与分析模型描述的总体趋势一致。还研究了日照强度和白天在不同地理位置太阳强度对浮力驱动的通风流量和温度分布的影响。

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