Integrated radiative and evaporative cooling beyond daytime passive cooling power limit

辐射冷却 白天 被动冷却 蒸发冷却器 主动冷却 环境科学 材料科学 水冷 冷冻机 发射率 核工程 阳光 光电子学 气象学 光学 大气科学 机械工程 热的 物理 工程类 热力学
作者
Houze Yao,Huhu Cheng,Qihua Liao,Xuanzhang Hao,Kaixuan Zhu,Yajie Hu,Liangti Qu
出处
期刊: [Tsinghua University Press]
卷期号:2: e9120060-e9120060 被引量:40
标识
DOI:10.26599/nre.2023.9120060
摘要

Radiative cooling technologies can passively gain lower temperature than that of ambient surroundings without consuming electricity, which has emerged as potential alternatives to traditional cooling methods. However, the limitations in daytime radiation intensity with a net cooling power of less than 150 W·m−2 have hindered progress toward commercial practicality. Here, we report an integrated radiative and evaporative chiller (IREC) based on polyacrylamide hydrogels combined with an upper layer of breathable poly(vinylidene fluoride-co-trifluoroethylene) fibers, which achieves a record high practical average daytime cooling power of 710 W·m−2. The breathable fiber layer has an average emissivity of over 76% in the atmospheric window, while reflecting 90% of visible light. This IREC possesses effective daytime radiative cooling while simultaneously ensuring evaporative cooling capability, enhancing daytime passive cooling effectively. As a result, IREC presents the practicability for both personal cooling managements and industrial auxiliary cooling applications. An IRECbased patch can assist in cooling human body by 13 °C low for a long term and biocompatible use, and IREC can maintain the temperature of industrial storage facilities such as oil tanks at room temperature even under strong sunlight irradiation. This work delivers the highest performance daytime passive cooling by simultaneous infrared radiation and water evaporation, and provides a new perspective for developing highly efficient, scalable, and affordable passive cooling strategy.
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