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Modeling the thermal performance of passive roofing systems in a tropical climate

机译:在热带气候中建模无源屋顶系统的热性能

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In order to curb the space cooling load in buildings in summer, various passive technologies have been applied on the roofs, including cool paint, roof ventilation, and mass/reflective insulation. It is highly desirable to evaluate the potential benefits of applying these passive technologies on the roofs. In this work, the Complex Fast Fourier Transform (CFFT) method is introduced to predict the ceiling temperature and heat gain of multilayer roofs. A parameter study based on the CFFT model is conducted to investigate the impacts of rooftop surface reflectivity and insulation thickness on the thermal performance of roofs. It is concluded that, compared with the least reflective roofs of solar reflectivity 0.1, increasing the solar reflectivity of roof by 0.1 cuts down the daily heat gain by 4%, 5% and 7% respectively, when the indoor temperatures are set to 25°C, 22°C to 19°C. In addition, increasing the thickness of basic 15-cm unventilated roof by 5 cm contributes to reduce the daily heat gain by 6% on average. The heat gain reductions obtained by applying various passive technologies on roofs subjected to typical Singapore climate are evaluated, including cool paint, roof ventilation, expanded polystyrene (EPS) foam and radiant barrier (RB). The individual uses of the passive roofing technologies contribute to reduce the daily roof heat gain by 36-84%.
机译:为了抑制夏季建筑物的空间冷却负荷,屋顶上施加了各种无源技术,包括凉爽的油漆,屋顶通风和质量/反射绝缘。非常希望评估将这些被动技术在屋顶上应用这些被动技术的潜在益处。在这项工作中,引入了复杂的快速傅里叶变换(CFFT)方法来预测多层屋顶的上限温度和热增益。进行了基于CFFT模型的参数研究,研究了屋顶表面反射率和绝缘厚度对屋顶热性能的影响。结论是,与太阳能反射率的最小反射屋顶0.1,当室内温度设定为25°时,将屋顶的最小反射率的最小反射屋顶增加了0.1的日常热量增益,减少了4%,5%和7%。 C,22°C至19°C。此外,将碱性15厘米不透明的屋顶的厚度提高5cm的厚度有助于平均将日热增益降低6%。通过在经受典型的新加坡气候的屋顶上应用各种被动技术获得的热收率降低,包括凉爽的涂料,屋顶通风,膨胀的聚苯乙烯(EPS)泡沫和辐射屏障(RB)。被动屋顶技术的个人用途有助于将日常屋顶的热量降低36-84%。

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