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Numerical simulation of heat transfer by natural convection in cavities of facade elements

机译:立面构件空腔中自然对流传热的数值模拟

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Heat transfer by the natural convection of air layers within vertical, rectangular cavities with aspect ratios (A) of 20, 40 and 80 was investigated in relation to applications in building facade elements, such as insulating glazing units, double-skin facades, doors, etc. using a computational fluid dynamics (CFD) code. Boundary conditions were assumed to be isothermal hot and cold wall, and zero heat flux at bottom and top cavity surfaces. Rayleigh numbers were between 1000 and 10~6, i.e. flow was either laminar or turbulent, and a conduction, transition or boundary layer regime was applied. The study focuses on overall convective heat flow through the air layer. The average Nusselt numbers calculated as a function of Rayleigh numbers are compared with five correlations from the literature which are based mainly on experimental data. Except for one correlation, no calculated Nusselt number deviates more than 20% from the correlations. Deviation is even <10% for A = 20. Therefore, this study improves the starting position for future applications of the code to more complex cases of facade elements, where less or even no experimental data are available in literature.
机译:研究了纵横比(A)为20、40和80的垂直矩形腔体中空气层的自然对流进行的热传递,并与建筑外墙元件(例如隔热玻璃,双层外墙,门,等等,使用计算流体动力学(CFD)代码。边界条件假定为等温热壁和冷壁,且腔体底部和顶部表面的热通量为零。瑞利数在1000到10〜6之间,即流量为层流或湍流,并应用了传导,过渡或边界层机制。该研究集中于通过空气层的整体对流热流。将根据瑞利数计算的平均努塞尔数与主要基于实验数据的文献中的五个相关性进行比较。除了一种相关性外,没有任何计算出的努塞尔特数与相关性相差超过20%。当A = 20时,偏差甚至小于<10%。因此,本研究提高了代码在更复杂的立面元素案例中的未来应用的起始位置,在这些案例中,文献中很少甚至没有实验数据。

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