辐射冷却
背景(考古学)
发射率
辐射传输
范围(计算机科学)
楼宇自动化
计算机科学
建筑工程
机械工程
红外线的
热的
被动冷却
能源消耗
工程物理
低发射率
遥感
环境科学
系统工程
高效能源利用
领域(数学)
电子设备和系统的热管理
航空航天工程
能量(信号处理)
热辐射
材料科学
太阳能
钥匙(锁)
辐射能
采光
楼宇管理系统
光学
辐射冷却
智能电网
物理
智能材料
光电子学
工程类
热舒适性
冷却能力
作者
Wenyan Qu,Yuxiang Fan,Quan Gong,Xiaojing Liu,Kai Jiao,Wensen Mi,Chao Shen,Lin Lu
标识
DOI:10.1016/j.rser.2026.116836
摘要
In the context of rapidly rising building energy consumption relative to global energy use, the integration of radiative cooling (RC) has emerged as a promising pathway toward energy-efficient buildings. However, the static nature of conventional RC, characterized by high solar reflectance ( R sol ) and high long-wave infrared emissivity ( ε LWIR ), often leads to overcooling during colder seasons. This creates an additional heating load that significantly limits its year-round energy-saving potential. To address this limitation, self-adaptive Radiative Cooling (SARC) has been developed. By harnessing the autonomous responses of smart materials to external stimuli such as temperature and sunlight, SARC enables dynamic switching between cooling (high R sol /high ε LWIR ) and heating (low R sol /low ε LWIR ) or insulating (low ε LWIR ) states. This provides a practical solution for all-season, all-weather building thermal management. This review begins by comparing static radiative cooling (SRC) and SARC in terms of performance metrics and spectral properties, establishing a strategic framework for designing next-generation smart building envelopes. It then delves into the fundamental principles of SARC materials, categorizing them based on two primary adaptive mechanisms: thermo-responsive and photo-responsive. This classification broadens the scope beyond thermally induced responses to include novel photon-induced excitation mechanisms. Subsequently, typical integration examples within key building components, such as roofs, walls, and windows, are examined to demonstrate practical application potential. Finally, this review identifies the critical challenges facing the SARC field and highlights potential research directions, offering theoretical guidance and technical support for the development of next-generation zero-energy smart buildings. • Self-adaptive radiative cooling overcoming static radiative cooling limitations. • Introduction of novel photon-induced excitation mechanism. • Dynamic switching mechanism with autonomous response to temperature and light. • The integration of self-adaptive radiative cooling into roofs, walls and windows. • The promising future research directions of self-adaptive radiative cooling.
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