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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Double skin facade: Modelling technique and influence of venetian blinds on the airflow and heat transfer
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Double skin facade: Modelling technique and influence of venetian blinds on the airflow and heat transfer

机译:双层蒙皮立面:百叶窗的建模技术及其对气流和传热的影响

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摘要

The demand to reduce building cooling load and annual energy consumption can be optimised with the use of Double Skin Facade (DSF). Computational Fluid Dynamics (CFD) methods are frequently used for the analysis of heat transfer through DSF. However, considerable uncertainty exists regarding few key parameters, such as modelling strategies and the solar heat transmitted to the indoor space as a function of the blind tilt angles and positioning within the facade channel. In this paper we have investigated four modelling strategies and the influence of blind tilt angle and their proximity to the facade walls. The DSF system used in this investigation is equipped with venetian blinds and facades that absorb and reflect the incident solar radiation and transfer the direct solar heat gain into the building. A finite volume discretization method with the SIMPLE solution algorithm of the velocity-pressure coupling involving the low-turbulence k-ε model is used. A ray-traced solar model is coupled with long wave radiation model to solve the complete solar and radiation fields along with convection and conduction fields. On the modelling strategies, three dimensional domains were cast over three computational zones; external zone with solar radiation entering the outer skin of glass; buoyancy-driven air cavity zone with convection and transmitted solar radiation; and an internal zone. Also investigated is the thermal behaviour of the DSF due to the blind tilt angles (30°, 45°, 60°, and 75°) and its position from the facade walls (104 mm, 195 mm, 287 mm and 379 mm). Validations of the results are based on experimental data from the literature and the predicted trends compared very well with the experimental measurements. The heat gain due to direct solar radiation and convection through the facades to the internal space are presented. Comparative analysis of the four modelling strategies shows little variation of the results. The implication is a reduction in complexity and cost of modelling, since the additional effort requires in the CFD modelling is not justified by a significant improvement of the results. The variations of the blinds tilt angles as well as its proximity to facade walls significantly influences the convective flow within the facade cavity and the heat gains to the indoor space.
机译:减少建筑物冷却负荷和年度能耗的需求可以通过使用双层蒙皮外墙(DSF)进行优化。计算流体动力学(CFD)方法通常用于分析通过DSF进行的传热。然而,关于很少的关键参数存在很大的不确定性,例如建模策略以及根据盲倾角和立面通道内的位置传递给室内空间的太阳热。在本文中,我们研究了四种建模策略以及盲倾斜角及其与立面墙的接近程度的影响。本研究中使用的DSF系统配有百叶窗和外墙,它们吸收并反射入射的太阳辐射,并将直接的太阳热能传递到建筑物中。使用涉及低湍流k-ε模型的速度-压力耦合的SIMPLE解算法的有限体积离散化方法。光线追踪的太阳模型与长波辐射模型结合使用,可以解决完整的太阳和辐射场以及对流和传导场。在建模策略上,在三个计算区域上覆盖了三个维度域。太阳辐射进入玻璃外层的外部区域;具有对流和透射太阳辐射的浮力驱动气腔区域;和一个内部区域。还研究了由于盲倾斜角(30°,45°,60°和75°)而导致的DSF的热行为及其与立面墙的位置(104 mm,195 mm,287 mm和379 mm)。结果的验证基于文献中的实验数据,并将预测趋势与实验测量结果进行了很好的比较。展示了由于直接的太阳辐射和通过外墙到内部空间的对流而产生的热量。四种建模策略的比较分析显示结果几乎没有差异。这意味着降低了建模的复杂性和成本,因为CFD建模中需要付出的额外努力并不能通过结果的显着改善来证明。百叶窗倾斜角的变化及其与立面墙的接近程度,会显着影响立面腔内的对流流动以及室内空间的热量吸收。

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