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首页> 外文期刊>Scientific reports. >Scalable Surface Microstructuring by a Fiber Laser for Controlled Nucleate Boiling Performance of High- and Low-Surface-Tension Fluids
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Scalable Surface Microstructuring by a Fiber Laser for Controlled Nucleate Boiling Performance of High- and Low-Surface-Tension Fluids

机译:通过光纤激光进行可伸缩表面微结构,用于控制高压和低表面张力流体的控制核沸腾性能

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摘要

Nucleate boiling enables effective cooling and heat transfer at low temperature differences between a heated surface and the surrounding fluid. It is utilized in many applications, ranging from large power plants to small microelectronics. To enhance the boiling process by minimization of the surface temperature and increase the maximum attainable heat flux, several approaches for surface modifications were recently developed. However, each of them has at least one important drawback, including challenging and expensive production, mechanical and/or thermal instability or problematic scale-up. Herein, a straightforward, robust and flexible method using a nanosecond fiber laser for production of surfaces with multi-scale micro-cavities (with diameters ranging from 0.2 to 10?μm) is developed. Examination of these surfaces in two very contrasting fluids - water, which is polar, has high surface tension and high latent heat of vaporization; and non-polar, dielectric tetradecafluorohexane (FC-72) with low surface tension and much lower latent heat - confirms that such surfaces enable enhanced heat transfer and controlled boiling in combination with diverse fluids. This demonstration suggests that the developed method has the potential to overcome the current limitations for further miniaturization of microelectronic devices and to increase performance and safety in high heat flux systems.
机译:成核沸腾使得能够在加热表面和周围流体之间的低温差异下进行有效的冷却和传热。它在许多应用中使用,从大型发电厂到小微电子。为了通过最小化表面温度来增强沸腾过程并增加最大可达到的热通量,最近开发了几种表面改性方法。然而,它们中的每一个至少具有一个重要的缺点,包括具有挑战性和昂贵的生产,机械和/或热不稳定性或有问题的扩展。这里,使用纳秒光纤激光器用于生产具有多尺度微空腔的表面的直接,稳健和灵活的方法(直径为0.2〜10?μm)。在两个非常对比的流体中检查这些表面 - 水的水具有高表面张力和高潜热的蒸发。具有低表面张力和低潜热的非极性介电四氟己烷(FC-72) - 确认这种表面能够增强热传递并与各种流体组合控制沸腾。该示范表明,开发方法具有克服进一步微型化的电流限制,并提高高热通量系统中的性能和安全性。

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