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EVAPORATIVE WICKING PHENOMENA ON NANOTEXTURED SURFACES FOR HEAT PIPE APPLICATIONS

机译:热管应用纳米化表面上的蒸发起泡现象

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摘要

Thermal management has become more important as high-performance electronics have concentrated heat loads with current cooling technologies. This motivates the implementation of new cooling solutions to dissipate high heat levels from high-performance electronics. Evaporative cooling is one of the most promising approaches for meeting these future thermal demands. Thin-film evaporation promotes heat dissipation through the phase change process with minimal conduction resistance. In this process, it is important to design surface properties and structures that can minimize meniscus thickness, increase liquid-vapor interface area, and enhance evaporation performances. In this study, we thereby investigate thin-film evaporation by employing nanotextured copper substrates for varying thermal conditions. Specifically, we visualize the liquid spreading on the nanotextured surfaces using a high-speed imaging technique to quantify evaporative heat transfer for various designs. The permeability is calculated using an enhanced wicking model to account for the evaporation effect. The mass balance measurements allow us to calculate evaporation rates. Then, we employ infrared thermography to examine two-dimensional temporal temperature profiles of the samples during the evaporative wicking with a given heat flux. The combination of time-lapse images, evaporation rate measurements, and temperature profiles will provide a comprehensive understanding of evaporation performances of textured surfaces.
机译:随着高性能电子设备利用当前的冷却技术集中热负荷,热管理变得越来越重要。这激励了新的冷却解决方案的实施,以消除高性能电子设备产生的高热量。蒸发冷却是满足这些未来热需求的最有前途的方法之一。薄膜蒸发可通过相变过程促进散热,且导通电阻最小。在此过程中,设计可最小化弯月面厚度,增加液-气界面面积并增强蒸发性能的表面特性和结构非常重要。在这项研究中,我们由此通过采用纳米织构化的铜基板来改变热条件来研究薄膜蒸发。具体来说,我们使用高速成像技术可视化散布在纳米纹理表面上的液体,以量化各种设计的蒸发传热。使用增强的芯吸模型计算渗透率,以解决蒸发作用。质量平衡测量使我们能够计算出蒸发速率。然后,我们使用红外热像仪检查在给定热通量的蒸发芯吸过程中样品的二维瞬时温度分布。延时图像,蒸发速率测量和温度曲线的组合将提供对带纹理表面的蒸发性能的全面了解。

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