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Roof-integrated radiative air-cooling system to achieve cooler attic for building energy saving

机译:屋顶集成辐射式空气冷却系统,使阁楼更凉爽,节省建筑能耗

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摘要

The building attic usually subjects to substantial solar heat gain and has much higher temperature compared to the conditioned living space during the day, especially in summer and in hot areas. Reducing attic temperature can reduce cooling energy consumption in buildings. However, conventional techniques such as cool roof or attic ventilation, suffer from either heating penalty in winter or limited attic temperature reduction. In this work, a new roof-integrated radiative air-cooling system is introduced, which couples radiative sky cooling with attic ventilation to reduce attic temperature. A radiative air cooler with 1.08 m(2) surface area is constructed using a recently developed daytime radiative sky cooling metamaterial [Zhai et al., Science 355, pp. 1062-1066, 2017]. Experimental tests show that sub-ambient air cooling is achieved throughout 24-h day-and-night cycle in a summer day with clear sky conditions. Depending on air flow rates, measured sub-ambient temperature reductions of air are 5-8 degrees C at night and 3-5 degrees C at noon under direct sunlight, respectively. An in-house model is first developed for the radiative air-cooling system, the model is then coupled with EnergyPlus to study annual energy saving of buildings. The performance of the radiative air-cooling system is compared with three reference systems: shingle roof, attic ventilation, and cool roof. Results show that for a single-family house, attic temperature can be substantially reduced by 15.5-21.0 degrees C, varying with attic insulation level, compared to shingle roof on typical summer days. Compared to a shingle roof (solar reflectance 0.25, thermal emittance 0.9) residential building with attic insulations of R-30 (RSI-5.28), R-10 (RSI-1.76), and R-0.8 (RSI-0.14), the roof-integrated radiative air-cooling system can achieve annual cooling energy savings of 0.4-1.5 kWh/m(2) (4.6-18.8%), 1.2-3.6 kWh/m(2) (10.2-41.4%),and 3.7-11.8 kWh/m(2) (26.5-76.1%) respectively. (C) 2019 Elsevier B.V. All rights reserved.
机译:与白天经过调节的居住空间相比,建筑阁楼通常要吸收大量的太阳能,并且温度要高得多,尤其是在夏季和炎热地区。降低阁楼温度可以减少建筑物的冷却能耗。然而,诸如凉爽的屋顶或阁楼通风之类的常规技术在冬天会遭受热量损失或阁楼温度降低受限。在这项工作中,引入了一种新的屋顶集成式辐射空气冷却系统,该系统将辐射式天空冷却与阁楼通风相结合,以降低阁楼温度。使用最近开发的白天辐射式天空冷却超颖材料构建了表面积为1.08 m(2)的辐射式空气冷却器[Zhai等,Science 355,第1062-1066页,2017]。实验测试表明,在夏天和晴朗的天空条件下,整个昼夜周期中的整个24小时都可以实现低于室温的空气冷却。根据空气流量,在阳光直射下,夜间测得的低于环境温度的温度分别为夜间5-8摄氏度和中午3-5摄氏度。首先为辐射式空气冷却系统开发一个内部模型,然后将该模型与EnergyPlus结合使用,以研究建筑物的年度节能。将辐射空气冷却系统的性能与三个参考系统进行了比较:木瓦屋顶,阁楼通风和凉爽屋顶。结果表明,与典型夏季的木瓦屋顶相比,对于单户住宅,阁楼温度可显着降低15.5-21.0摄氏度,具体情况取决于阁楼的隔热等级。与带有R-30(RSI-5.28),R-10(RSI-1.76)和R-0.8(RSI-0.14)的阁楼绝缘的带屋顶的屋顶(太阳反射率为0.25,热辐射率为0.9)相比集成式辐射式空气冷却系统可实现0.4-1.5 kWh / m(2)(4.6-18.8%),1.2-3.6 kWh / m(2)(10.2-41.4%)和3.7-11.8的年度冷却节能量kWh / m(2)(26.5-76.1%)。 (C)2019 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Energy and Buildings》 |2019年第11期|109453.1-109453.9|共9页
  • 作者

  • 作者单位

    Univ Colorado Dept Mech Engn Boulder CO 80309 USA;

    Univ Colorado Dept Mech Engn Boulder CO 80309 USA|Univ Colorado Mat Sci & Engn Program Boulder CO 80309 USA;

    Univ Wyoming Dept Civil & Architectural Engn Laramie WY 82071 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Radiative sky cooling; Attic cooling; Attic ventilation; Building energy saving;

    机译:辐射天空冷却;阁楼冷却;阁楼通风;建筑节能;

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