BaSO4 NPs改性碱活化GGBS的碳酸化及日间被动辐射冷却研究

IF 7.3 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Xiantong Yan, Shirui Peng, Meng Yang, Wenhui Duan and Hongzhi Cui*, 
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引用次数: 0

摘要

本研究选择碱活化的粒状高炉渣(AAS)作为低碳前驱体,通过加速碳化和纳米BaSO4 (NPs)改性制备无机辐射冷却器。实验研究了加速碳化和BaSO4剂量对太阳反射率和热发射率的影响,以及多种分析表征,为相/微观结构转变与光学性能之间的相关性提供了见解。此外,还进行了小规模的现场试验,以验证预制样品在室外环境中的冷却性能。随后进行能量平衡分析以计算相应的净冷却功率。结果表明,碳化和BaSO4 NPs的协同作用将太阳反射率从10.3提高到83.9%,而对热发射率的影响可以忽略不计。机理分析表明,BaSO4纳米粒子的增白作用及其促进方解石和毛细孔形成的能力是提高太阳反射率的主要原因。与普通样品相比,室外测量显示出出色的被动冷却性能,正午平均温度下降~ 10°C,对应于59 W/m2的净冷却功率。这项工作为将废渣升级为高性能被动冷却材料铺平了道路,同时也为节能建筑捕获了二氧化碳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Carbonation of BaSO4 NPs Modified Alkali-Activated GGBS for Passive Daytime Radiative Cooling

Carbonation of BaSO4 NPs Modified Alkali-Activated GGBS for Passive Daytime Radiative Cooling

In this study, alkali-activated granulated blast furnace slag (AAS) was selected as a low-carbon precursor for fabricating an inorganic radiative cooler via accelerated carbonation and BaSO4 nanoparticles (NPs) modification. The influence of the accelerated carbonation and BaSO4 dosages on the solar reflectance and thermal emittance were experimentally investigated, along with multiple analytical characterizations that provide insights into the correlation between phase/microstructure transformation and optical properties. Additionally, small-scale field tests were conducted to validate the cooling performance of the as-fabricated sample in outdoor environments. An energy balance analysis was subsequently performed to calculate the corresponding net cooling power. The results revealed that the synergy of carbonation and BaSO4 NPs significantly improved the solar reflectance from 10.3 to 83.9% while having negligible impact on the thermal emittance. Mechanism analysis indicated that the whitening effect of BaSO4 NPs and its capability to promote the formation of calcite and capillary pore were responsible for the improved solar reflectance. Outdoor measurements demonstrated an excellent passive cooling performance compared to the plain sample, with an average temperature drop of ∼10 °C in the midday, corresponding to a net cooling power of 59 W/m2. This work paves the way for upcycling waste slag into a high-performance passive cooling material while also capturing CO2 for energy-efficient buildings.

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来源期刊
ACS Sustainable Chemistry & Engineering
ACS Sustainable Chemistry & Engineering CHEMISTRY, MULTIDISCIPLINARY-ENGINEERING, CHEMICAL
CiteScore
13.80
自引率
4.80%
发文量
1470
审稿时长
1.7 months
期刊介绍: ACS Sustainable Chemistry & Engineering is a prestigious weekly peer-reviewed scientific journal published by the American Chemical Society. Dedicated to advancing the principles of green chemistry and green engineering, it covers a wide array of research topics including green chemistry, green engineering, biomass, alternative energy, and life cycle assessment. The journal welcomes submissions in various formats, including Letters, Articles, Features, and Perspectives (Reviews), that address the challenges of sustainability in the chemical enterprise and contribute to the advancement of sustainable practices. Join us in shaping the future of sustainable chemistry and engineering.
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