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A kW-scale, 24-hour continuously operational, radiative sky cooling system: Experimental demonstration and predictive modeling

机译:千瓦级,24小时连续运行的辐射式天空冷却系统:实验演示和预测模型

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With the advancement in sub-ambient cooling of water during daytime under the sun with scalable-manufactured radiative cooling metamaterials, the challenge for applications lies in design and building of large-scale radiative cooling systems. Here, we present a kW-scale, 24-hour continuously operational, radiative sky cooling system, with both experimental study and detailed modeling. We first quantitatively show how water flow rate directly affects the system cooling power and inversely affects the water temperature drop. A day-and-night stagnant (flow rate = 0 L/(min.m(2))) water cooling test of the system shows a consistent sub-ambient water temperature drop of 5-7 degrees C. A daytime cooling test of the system at a low flow rate of 0.227 L/(min.m(2)) yields a maximum sub-ambient temperature drop of 4.0 degrees C with an average net cooling power of around 80 W/m(2). Further modelling for a typical metrological year (in Phoenix, Arizona) shows that the system could generate as much as 350 kWh cold (or 26 kWh/m(2)) with a sub-ambient temperature drop of 4-5 degrees C at a low flow rate of 0.1 L/(min.m(2)) during a typical summer month. The cold generated could be used to assist AC systems in regions or seasons with high ambient temperatures.
机译:随着日间利用可伸缩制造的辐射冷却超常材料在日光下对水进行低温冷却的发展,应用面临的挑战在于大规模辐射冷却系统的设计和建造。在这里,我们提供了一个kW规模,24小时连续运行的辐射式天空冷却系统,并进行了实验研究和详细的建模。我们首先定量地显示出水流量如何直接影响系统的冷却能力,并反过来影响水温下降。该系统的昼夜停滞(流速= 0 L /(min.m(2)))进行的水冷却测试显示,持续低于5-7摄氏度的环境水温下降。该系统以0.227 L /(min.m(2))的低流量产生的最大亚环境温度下降为4.0摄氏度,平均净冷却功率为80 W / m(2)。对典型的计量年份(在亚利桑那州凤凰城)进行的进一步建模表明,该系统可以产生高达350 kWh的冷量(或26 kWh / m(2)),并且在室温下温度下降4-5摄氏度。在典型的夏季,流量低至0.1 L /(min.m(2))。产生的冷气可用于辅助环境温度高的地区或季节的交流系统。

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