辐射冷却
散热器(发动机冷却)
共发射极
黑体辐射
材料科学
被动冷却
核工程
光电子学
辐射传输
自由冷却
环境科学
水冷
主动冷却
功率密度
太阳能
光学
冷却能力
热的
辐射
功率(物理)
物理
气象学
热力学
电气工程
工程类
作者
Lyu Zhou,Haomin Song,Nan Zhang,Jacob Rada,Matthew Singer,Huafan Zhang,Boon S. Ooi,Zongfu Yu,Qiaoqiang Gan
标识
DOI:10.1016/j.xcrp.2021.100338
摘要
Radiative cooling is an emerging sustainable technology that does not require electricity to function. However, to realize sub-ambient cooling, the effects of the undesired incident solar energy must be minimized. Considering an ideal blackbody radiator at 300 K, the maximum cooling power density is ∼160 W/m2. Here, we report an architecture capable of overcoming this challenge by using two spectrally selective mirrors to simultaneously absorb the incident sunlight and re-direct the thermal emission from a vertically aligned emitter. With this configuration, both sides of the vertical emitter can be used together to realize a measured local cooling power density of over 270 W/m2 in a controlled laboratory environment. Under standard atmospheric pressure, we realized cooling that was 14°C below the ambient temperature in the laboratory environment and a more than 12°C temperature reduction in outdoor testing.
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