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Enhanced heat transfer is dependent on thickness of graphene films: the heat dissipation during boiling

机译:增强的热传递取决于石墨烯薄膜的厚度:沸腾过程中的散热

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摘要

Boiling heat transfer (BHT) is a particularly efficient heat transport method because of the latent heat associated with the process. However, the efficiency of BHT decreases significantly with increasing wall temperature when the critical heat flux (CHF) is reached. Graphene has received much recent research attention for applications in thermal engineering due to its large thermal conductivity. In this study, graphene films of various thicknesses were deposited on a heated surface, and enhancements of BHT and CHF were investigated via pool-boiling experiments. In contrast to the well-known surface effects, including improved wettability and liquid spreading due to micron- and nanometer-scale structures, nanometer-scale folded edges of graphene films provided a clue of BHT improvement and only the thermal conductivity of the graphene layer could explain the dependence of the CHF on the thickness. The large thermal conductivity of the graphene films inhibited the formation of hot spots, thereby increasing the CHF. Finally, the provided empirical model could be suitable for prediction of CHF.
机译:沸腾传热(BHT)是一种特别有效的传热方法,因为与该过程相关的潜热。但是,当达到临界热通量(CHF)时,BHT的效率会随着壁温的升高而显着降低。石墨烯由于其大的热导率而在热工程中得到了许多最新的研究关注。在这项研究中,各种厚度的石墨烯薄膜沉积在加热的表面上,并通过池沸腾实验研究了BHT和CHF的增强。与众所周知的表面效应(包括由于微米级和纳米级结构导致的润湿性改善和液体扩散)相反,石墨烯薄膜的纳米级折叠边缘提供了BHT改进的线索,只有石墨烯层的导热性可以解释CHF对厚度的依赖性。石墨烯膜的大导热率抑制了热点的形成,从而增加了CHF。最后,所提供的经验模型可能适用于CHF的预测。

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