Emissivity and Reflectivity Measurements for Passive Radiative Cooling Technologies

IF 2.5 4区 工程技术 Q3 CHEMISTRY, PHYSICAL International Journal of Thermophysics Pub Date : 2025-03-15 DOI:10.1007/s10765-025-03532-6
A. Adibekyan, J. Schumacher, L. Pattelli, J. Manara, S. Meriç, Ö. Bazkir, C. Cucchi, C. Sprengard, G. Pérez, J. Campos, J. Hameury, A. Andersson, S. Clausen,  A. Rasmussen, C. Belotti, S. Efthymiou, M.-N. Assimakopoulos, D. Papadaki, F. Manoocheri, A. Llados, J. Jaramillo-Fernandez, T. Gionfini, M. Ortisi, A. Peter, M. Kleinbub, J. Bante, L. Donath, H. Herzog, C. Monte
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Abstract

Due to their optical properties, passive radiative cooling (PRC) materials can effectively reflect solar radiation while simultaneously dissipating heat through the infrared transparency windows using outer space as a cold and renewable heat sink. This makes it possible to achieve sub-ambient temperatures even in direct sunlight without using any electricity for cooling or air-conditioning. However, the accurate determination of these peculiar optical properties is challenging and subject to high uncertainty levels when using commercial instruments available to industrial end users and research laboratories. Within the EU project PaRaMetriC, aiming at establishing a metrological framework for the comparable performance evaluation of PRC technologies, the Physikalisch-Technische Bundesanstalt is leading a work package dedicated to the development of accurate and traceable methods to determine the infrared optical and thermophysical properties of PRC materials. These include reflectivity and emissivity in the broad spectral range from 250 nm to 50 µm, encompassing both, the solar spectrum (250 nm–2500 nm) and the infrared transparency window of the atmosphere (7.1 μm–13 μm) with a target absolute uncertainty of less than 0.03. For this purpose, several candidate benchmark passive cooling materials have been characterized by PTB in the wavelength range between 1.4 µm and 50 µm. The range 250 nm to 1.4 µm will be covered in an upcoming paper. Characterizations of, and comparisons between, reference and end-user measurement techniques applied for the measurements of selected PRC materials will not only allow accurate determination of the thermophysical properties, but also identification of measurement problems and suitable approaches in this rapidly expanding field.

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由于其光学特性,被动辐射冷却(PRC)材料可以有效地反射太阳辐射,同时通过红外透明窗口利用外层空间作为冷的和可再生的散热器来散热。因此,即使在阳光直射的情况下,也可以达到亚环境温度,而无需使用任何电力进行冷却或空调。然而,使用工业终端用户和研究实验室可用的商业仪器来精确测定这些特殊的光学特性具有挑战性,而且不确定性很高。欧盟的 PaRaMetriC 项目旨在为 PRC 技术的可比性能评估建立一个计量框架,在该项目中,德国联邦物理技术局(Physikalisch-Technische Bundesanstalt)领导了一个工作包,致力于开发精确、可追溯的方法,以确定 PRC 材料的红外光学和热物理性质。其中包括 250 纳米至 50 微米宽光谱范围内的反射率和发射率,涵盖太阳光谱(250 纳米至 2500 纳米)和大气红外透明窗口(7.1 微米至 13 微米),目标绝对不确定性小于 0.03。为此,PTB 在 1.4 μm 至 50 μm 波长范围内对几种候选基准被动冷却材料进行了表征。250 纳米到 1.4 微米的波长范围将在下一篇论文中介绍。对用于测量选定的被动冷却材料的参考测量技术和最终用户测量技术进行表征和比较,不仅可以准确确定热物理性质,还可以确定测量问题和这一快速发展领域的合适方法。
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来源期刊
CiteScore
4.10
自引率
9.10%
发文量
179
审稿时长
5 months
期刊介绍: International Journal of Thermophysics serves as an international medium for the publication of papers in thermophysics, assisting both generators and users of thermophysical properties data. This distinguished journal publishes both experimental and theoretical papers on thermophysical properties of matter in the liquid, gaseous, and solid states (including soft matter, biofluids, and nano- and bio-materials), on instrumentation and techniques leading to their measurement, and on computer studies of model and related systems. Studies in all ranges of temperature, pressure, wavelength, and other relevant variables are included.
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