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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Effect of Thermal Conductivity on Enhanced Evaporation of Water Droplets from Heated Graphene-PDMS Composite Surfaces
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Effect of Thermal Conductivity on Enhanced Evaporation of Water Droplets from Heated Graphene-PDMS Composite Surfaces

机译:热导率对加热石墨烯-PDMS复合表面水滴增强蒸发的影响

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摘要

The dynamics of evaporating water droplets on heated graphene-poly(dimethylsiloxane) (PDMS) composites is investigated experimentally and theoretically. By inserting graphene nucleates in PDMS, we report the effect of change in thermal resistance on the evaporation process of water droplets on the heated graphene-PDMS composite surface. By dispersing graphene within the PDMS matrix, the evaporation of water droplets is enhanced. The graphene nucleate density over the surface was controlled by varying graphene wt % from 0 to 2%, which in turn controls the thermal resistance and hence the evaporation rate. Experimentally, the maximum evaporation rate of 0.0044 mu L/s was observed for the sample of 2 wt % graphene-PDMS composite. The evaporation rate on a 2 wt % graphene-PDMS composite surface is about 1.5 times higher compared to that of plain PDMS without graphene. A theoretical model confirms that the initial contact angle and the presence of thermal coupling between liquid droplets and the substrate play an important role in evaporation dynamics. Thermal conductance increases 3 times with the increase in graphene wt % from 0.1 to 2.0 wt % in PDMS. The heat-storing capacity of graphene is responsible for the enhanced evaporation. The experimental findings are in good agreement with theoretical results. These samples were found insensitive to degradation and may find potential applications where high efficiency and high heat flux are needed.
机译:实验和理论上研究了加热的石墨烯 - 聚(二甲基硅氧烷)(PDMS)复合材料上蒸发水滴的动态。通过在PDMS中插入石墨烯成核,我们报告了热阻变化对加热石墨烯-PDMS复合表面上水滴蒸发过程的影响。通过在PDMS基质内分散石墨烯,增强了水滴的蒸发。通过从0至2%的水性重量%重化为0至2%,将表面上的石墨烯成核密度控制,这反过来控制热阻并因此蒸发速率。实验地,对于2wt%石墨烯-PDMS复合材料的样品,观察到0.0044μL/ s的最大蒸发速率。与没有石墨烯的普通PDMS相比,2wt%Graphene-PDMS复合表面上的蒸发速率高约1.5倍。理论模型证实初始接触角和液滴与基板之间的热耦合的存在在蒸发动态中起重要作用。热传导随着PDMS中的0.1至2.0wt%的石墨烯Wt%的增加而增加3次。石墨烯的蓄热能力负责增强的蒸发。实验结果与理论结果吻合良好。发现这些样品对降解不敏感,并且可以找到需要高效率和高热量通量的潜在应用。

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