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实现被动辐射材料自适应冷却的简便方法。

Easy Way to Achieve Self-Adaptive Cooling of Passive Radiative Materials.

作者信息

Xia Zhilin, Fang Zhen, Zhang Zhenfei, Shi Kailiang, Meng Zhenghua

机构信息

State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan, Hubei 430070, P. R. China.

Hubei Key Laboratory of Advanced Technology for Automotive Components, Wuhan University of Technology, Wuhan, Hubei 430070, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Jun 17;12(24):27241-27248. doi: 10.1021/acsami.0c05803. Epub 2020 Jun 5.

Abstract

Passive radiative cooling includes using the atmospheric window to emit heat energy to the cold outer space and hence reduce the temperature of objects on Earth. In most cases, radiative cooling is required in summer and suppressed in winter for thermal comfort. Recent radiative cooling materials cannot self-adjust cooling capacity according to season and environment, thus limiting their applications. In this study, we have designed a temperature-controlled phase change structure (TCPCS). The TCPCS benefits radiative coolers to adjust their cooling ability according to the ambient temperature. In the outdoor test, the TCPCS can help the cooler to turn off at low temperatures and turn on at high temperatures automatically; the coolers with and without TCPCS have maximal temperature differences of 9.7 and 19.6 °C, respectively, in a whole day. Furthermore, we have further improved and designed a V-shaped TCPCS that can simultaneously achieve the dual functions of cooling in summer and heating in winter. The TCPCS assembled here is a simple, feasible, and scalable structure for self-adaptive cooling.

摘要

被动辐射冷却包括利用大气窗口向寒冷的外层空间发射热能,从而降低地球上物体的温度。在大多数情况下,为了获得热舒适性,夏季需要辐射冷却而冬季则需抑制。最近的辐射冷却材料无法根据季节和环境自我调节冷却能力,从而限制了它们的应用。在本研究中,我们设计了一种温度控制相变结构(TCPCS)。该TCPCS有助于辐射冷却器根据环境温度调节其冷却能力。在户外测试中,TCPCS可帮助冷却器在低温时关闭、在高温时自动开启;配备和未配备TCPCS的冷却器在一整天内的最大温差分别为9.7℃和19.6℃。此外,我们进一步改进并设计了一种V形TCPCS,其可同时实现夏季冷却和冬季加热的双重功能。此处组装的TCPCS是一种用于自适应冷却的简单、可行且可扩展的结构。

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