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A new wall function for indoor airflow with buoyancy effect

机译:室内气流具有浮力效应的新墙壁功能

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Convective heat transfer on interior surfaces of the building envelope is important for predicting building energy consumption. The buoyancy effect is a key factor in convective heat transfer. Reynolds-averaged Navier-Stokes (RANS) models combined with the standard wall function are often used to simulate the convective heat transfer coefficient of an interior wall. However, since the buoyancy effect is not considered in the standard wall function, the convective heat transfer is often underestimated, which in turn will affect the prediction of indoor air velocity and temperature distributions. Several researchers have modified the standard wall function by adjusting the wall Prandtl number, but this ad hoc adjustment has not always been effective and has no physical basis. This investigation developed a new wall function that accounts for the influence of buoyancy on heat transfer by adding a buoyancy source term to the Navier-Stokes equation for the near-wall region. The source term varies with the ratio of buoyancy and inertia forces and is linear to the logarithm of the Richardson number. Five typical indoor flows were then simulated with the new wall function to test its performance. The results show that the predicted profiles of air velocity and air temperature and the local Nu number were significantly better than those predicted with the standard wall function. The study concluded that the new wall function can correctly predict convective heat transfer on an interior wall.
机译:建筑信封内表面上的对流传热对于预测建筑能耗来说是重要的。浮力效应是对流热传递的关键因素。 Reynolds-Iveriged Navier-Stokes(RANS)模型与标准壁功能相结合通常用于模拟内墙的对流传热系数。然而,由于在标准壁函数中不考虑浮力效果,因此对流热传递通常低估,这又会影响室内空气速度和温度分布的预测。几位研究人员通过调整墙壁普朗特数来修改标准墙体功能,但这种临时调整并不总是有效的并且没有物理基础。该调查开发了一种新的墙壁功能,该功能占浮力对近墙区域的浮雕源术语来对热传递的影响。源极限随着浮力和惯性力的比率而变化,并且是Richardson号的对数的线性。然后用新的墙壁函数模拟五个典型的室内流动以测试其性能。结果表明,空气速度和空气温度的预测轮廓和局部NU编号明显优于标准壁功能的那些。该研究得出结论,新墙壁功能可以正确地预测内壁上的对流传热。

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