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Utilizing Solar Infrared-induced Photothermal Heating on Building Windows in Winter

机译:利用太阳红外线诱导的冬季建筑窗户的光热加热

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Single-pane windows still account for a large percentage of the US building energy consumption. In this paper, we introduced a new solution incorporating the photothermal effect of metallic nanoparticles (Fe_3O_4@Cu_(2-xS)) into glazing structures to utilize solar infrared and then enhance the window's thermal performance in winter. Such spectrally selective characteristics of the designed photothermal films were obtained from lab measurements and then integrated into a thermodynamic analytical model. Subsequently, we examined the thermal and optical behaviors of the photothermal single-pane window and compared its overall energy performance with the conventional low-e coated single-pane window, in which typical window properties, dimensions, winter boundary conditions, and solar irradiance were adopted. The numerical analysis results demonstrated that the photothermal window systems could yield 20.4% energy savings relative to the conventional low-e coated windows. This research paves an underlying thermodynamic mechanism for understanding such a nanoscale phenomenon at the architectural scale. From the implementation perspective, the designed photothermal film can be added into the existing single-pane windows for energy-efficient retrofitting purposes.
机译:单窗帘Windows仍占美国建筑能源消耗的大量比例。在本文中,我们介绍了一种新的解决方案,将金属纳米颗粒(Fe_3O_4 / @ Cu_(2-Xs))的光热效应掺入玻璃结构中以利用太阳红外线,然后在冬季增强窗口的热性能。从实验室测量中获得设计的光热膜的这种光谱选择性特性,然后集成到热力学分析模型中。随后,我们检查了光热单窗窗的热敏和光学行为,并将其整体能量性能与传统的低电子涂层单窗框窗口进行了比较,其中典型的窗口特性,尺寸,冬季边界条件和太阳辐照度是采纳。数值分析结果表明,光热窗口系统可以相对于传统的低电子覆盖窗产生20.4%的节能。本研究铺平了一种潜在的热力学机制,以了解建筑规模的纳米级现象。从实现的角度来看,设计的光热膜可以添加到现有的单窗窗口中以进行节能改装目的。

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