被动冷却
辐射冷却
材料科学
建筑围护结构
辐射传输
热的
保温
复合材料
环境科学
主动冷却
核工程
余热
热导率
光电子学
光学
水冷
机械工程
工程类
热交换器
气象学
物理
图层(电子)
作者
Hongmei Zhong,Yanan Li,Peng Zhang,Shouwei Gao,Bing‐Ying Liu,Yang Wang,Ting Meng,Yongsen Zhou,Huwang Hou,Chao‐Hua Xue,Yang Zhao,Zuankai Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2021-05-20
卷期号:15 (6): 10076-10083
被引量:160
标识
DOI:10.1021/acsnano.1c01814
摘要
Daytime passive radiative cooling is a promising electricity-free pathway for cooling terrestrial buildings. Current research interest in this cooling strategy mainly lies in tailoring the optical spectra of materials for strong thermal emission and high solar reflection. However, environmental heat gain poses a crucial challenge to building cooling at subambient temperatures. Herein, we devise a scalable thermal insulating cooler (TIC) consisting of hierarchically hollow microfibers as the building envelope that simultaneously achieves passive daytime radiative cooling and thermal insulation to reduce environmental heat gain. The TIC demonstrates efficient solar reflection (94%) and long-wave infrared emission (94%), yielding a temperature drop of about 9 °C under sunlight of 900 W/m2. Notably, the thermal conductivity of the TIC is lower than that of air, thus preventing heat flow from external environments to indoor space in the summer, an additional benefit that does not sacrifice the radiative cooling performance. A building energy simulation shows that 48.5% of cooling energy could be saved if the TIC is widely deployed in China.
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