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Numerical investigations of buoyancy-driven natural ventilation in a simple three-storey atrium building and thermal comfort evaluation

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和热舒适性评估

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The numerical investigations of buoyancy-driven natural ventilation and thermal comfort evaluation in a simple three-storey atrium building as a part of the passive ventilation strategy was undertaken using a validated Computational Fluid Dynamic (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 investigations. The steady-state governing equations were solved using a commercial solver FLUENT. Various flow situations of the buoyancy-driven natural ventilation in the building during day and night time were examined. The numerical results obtained for the airflow rates, airflow patterns and temperature distributions inside the building are presented in this paper. Using the numerical results, the well-known thermal comfort indices PMV (predicted mean vote) and PPD (predicted percentage of dissatisfied) were calculated for the evaluation of the thermal comfort conditions in the occupied regions of the building. It was noticed that thermal conditions prevailing in the occupied areas of the building as a result of using the buoyancy-driven ventilation were mostly in comfort zone. From the study of the night time ventilation, it was found that hot water (80℃) circulation (heated by solar collectors during daytime) along the chimney walls during night time and heat sources present in the building can be useful in inducing night ventilation airflows in the building as a part of the passive ventilation strategy.
机译:使用经过验证的计算流体动力学(CFD)模型,对作为被动通风策略一部分的简单三层中庭建筑中的浮力驱动的自然通风和热舒适性评估进行了数值研究。数值研究采用了具有SST-k-ω湍流模型和离散转移辐射模型(DTRM)的雷诺平均Navier-Stokes(RANS)建模方法。使用商用求解器FLUENT求解稳态控制方程。在白天和晚上,研究了建筑物中由浮力驱动的自然通风的各种流动情况。本文介绍了建筑物内的风量,气流模式和温度分布的数值结果。使用数值结果,计算出众所周知的热舒适指数PMV(预测的平均投票)和PPD(预测的不满意百分比),以评估建筑物占用区域中的热舒适状况。值得注意的是,由于使用浮力驱动的通风,建筑物居住区域中普遍存在的热条件大部分处于舒适区。通过对夜间通风的研究,发现夜间烟囱壁上的热水(80℃)(白天由太阳能集热器加热)循环以及建筑物中存在的热源可用于诱导夜间通风气流。在建筑物中作为被动通风策略的一部分。

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