Thermofluidics Research Laboratory, Department of Mechanical Engineering, Indian Institute of Technology Ropar, Rupnagar 140001, Punjab, India.
Langmuir. 2023 May 16;39(19):6855-6864. doi: 10.1021/acs.langmuir.3c00459. Epub 2023 May 3.
Sustainable liquid cooling solutions are recognized as the future of thermal management in the chip industry. Among them, phase change heat transfer devices such as heat pipes and vapor chambers have shown tremendous potential. These devices rely on the physics of capillary-driven thin-film evaporation, which is inherently coupled with the design and optimization of the evaporator wicks used in these devices. Here, we introduce a biomimetic evaporator wick design inspired by the peristome of the that can achieve significantly enhanced evaporative cooling. It consists of an array of micropillars with multiple wedges along the sidewall of each micropillar. The efficacy of the wedged micropillar is evaluated based on a validated numerical model on the metrics of dryout heat flux and effective heat transfer coefficient. The wedge angle is chosen such that wedged micropillars cause liquid filaments to rise along the micropillar vertical walls. This results in a significant increase in thin-film area for evaporation. Additionally, the large mean curvature of the liquid meniscus produces strong capillary pumping pressure and simultaneously, the wedges increase the overall permeability of the wick. Consequently, our model predicts that the wedged micropillar wick can attain ∼234% enhancement of dryout heat flux compared to a conventional cylindrical micropillar wick of similar geometrical dimensions. Moreover, the wedged micropillars can also attain a higher effective heat transfer coefficient under dryout conditions, thus outperforming the cylindrical micropillar in terms of heat transfer efficiency. Our study provides insight into the design and capability of the biomimetic wedged micropillars as an efficient evaporator wick for various thin-film evaporation applications.
可持续的液体冷却解决方案被认为是芯片行业热管理的未来。其中,相变传热器件,如热管和蒸汽室,已经显示出巨大的潜力。这些设备依赖于毛细驱动薄液膜蒸发的物理原理,而这与蒸发器芯吸的设计和优化是内在相关的。在这里,我们引入了一种受植物气孔启发的仿生蒸发器芯吸设计,它可以实现显著增强的蒸发冷却效果。它由一系列带有多个楔形物的微柱组成,每个微柱的侧壁上都有楔形物。楔形微柱的效果是基于对干枯热通量和有效传热系数等指标的验证数值模型来评估的。楔形角的选择使得楔形微柱能够使液体灯丝沿着微柱的垂直壁上升。这导致蒸发的薄液膜面积显著增加。此外,液体弯月面的大平均曲率产生了强大的毛细泵送压力,同时,楔形物增加了芯吸的整体渗透性。因此,我们的模型预测,与具有类似几何尺寸的传统圆柱形微柱芯吸相比,楔形微柱芯吸可以将干枯热通量提高约 234%。此外,在干枯条件下,楔形微柱还可以获得更高的有效传热系数,从而在传热效率方面优于圆柱形微柱。我们的研究为仿生楔形微柱作为各种薄液膜蒸发应用的高效蒸发器芯吸的设计和性能提供了深入的了解。