辐射冷却
蒸发冷却器
被动冷却
辐射传输
湿度
环境科学
辐射
大气科学
材料科学
工作(物理)
辐射冷却
水冷
相对湿度
核工程
气象学
光电子学
物理
热力学
光学
热的
工程类
作者
Jipeng Fei,Di Han,Xuan Zhang,Ke Li,Nicolas Lavielle,Kai Zhou,Xingli Wang,Jun Yan Tan,Jianwei Zhong,Man Pun Wan,Elyes Nefzaoui,Tarik Bourouina,Shuzhou Li,Bing Feng Ng,Lili Cai,Hong Li
出处
期刊:Nano Letters
[American Chemical Society]
日期:2023-12-04
卷期号:24 (2): 623-631
被引量:21
标识
DOI:10.1021/acs.nanolett.3c03694
摘要
The cooling power of a radiative cooler is more than halved in the tropics, e.g., Singapore, because of its harsh weather conditions including high humidity (84% on average), strong downward atmospheric radiation (∼40% higher than elsewhere), abundant rainfall, and intense solar radiation (up to 1200 W/m2 with ∼58% higher UV irradiation). So far, there has been no report of daytime radiative cooling that well achieves effective subambient cooling. Herein, through integrated passive cooling strategies in a hydrogel with desirable optofluidic properties, we demonstrate stable subambient (4-8 °C) cooling even under the strongest solar radiation in Singapore. The integrated passive cooler achieves an ultrahigh cooling power of ∼350 W/m2, 6-10 times higher than a radiative cooler in a tropical climate. An in situ study of radiative cooling with various hydration levels and ambient humidity is conducted to understand the interaction between radiation and evaporative cooling. This work provides insights for the design of an integrated cooler for various climates.
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