Record-high heat transfer performance of spray cooling on 3D-printed hierarchical micro/nano-structured surface.

IF 18.8 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Science Bulletin Pub Date : 2024-10-24 DOI:10.1016/j.scib.2024.10.028
Yongyan Hu, Yifan Lei, Xiuliang Liu, Ronggui Yang
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Abstract

Managing high-flux waste heat with controllable device working temperature is becoming challenging and critical for the artificial intelligence, communications, electric vehicles, defense and aerospace sectors. Spray cooling, which combines forced convection with phase-change latent heat of working fluids, is promising for high flux heat dissipation. Most of the previous studies on spray cooling enhancement adopted high spray flow rates to strengthen forced convection for high critical heat flux (CHF), leading to a low heat transfer coefficient (HTC). Micro/nanostructured surfaces can enhance boiling, but bubbles inside the structures tend to form a vapor blanket, which can deteriorate heat transfer. This work demonstrates simultaneous enhancement of CHF and HTC in spray cooling by improving both evaporation and liquid film boiling on three-dimensional (3D) ordered hierarchical micro/nano-structured surface. The hierarchical micro/nano-structured surface is designed to coordinate the transport of spray droplets, capillary liquid films, and boiling bubbles to enhance spray cooling performance. Boiling inversion where superheat decreases with increasing heat flux is observed, leading to an ultra-high HTC due to the simultaneous promotion of bubble nucleation and evaporation. Unprecedented CHF is obtained by overcoming the liquid-vapor counterflow, i.e., synergistically facilitating bubble escape and liquid permeation. A record-breaking heat transfer performance of spray cooling is achieved with a maximum heat flux of 1273 W/cm2 and an HTC of 443.7 kW/(m2 K) over a 1 cm2 heating area.

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三维打印分层微/纳米结构表面的喷雾冷却传热性能创历史新高。
对于人工智能、通信、电动汽车、国防和航空航天领域来说,利用可控设备工作温度管理高通量余热正变得越来越具有挑战性和重要性。喷雾冷却结合了强制对流和工作流体的相变潜热,在高通量散热方面大有可为。以往关于喷雾冷却强化的研究大多采用高喷雾流速来强化强制对流,以获得高临界热通量(CHF),从而导致低传热系数(HTC)。微/纳米结构表面可以增强沸腾,但结构内部的气泡容易形成蒸汽毯,从而降低传热效果。本研究通过改善三维(3D)有序分层微/纳米结构表面上的蒸发和液膜沸腾,展示了在喷雾冷却中同时增强 CHF 和 HTC 的效果。分层微/纳米结构表面旨在协调喷雾液滴、毛细液膜和沸腾气泡的传输,从而提高喷雾冷却性能。由于同时促进了气泡成核和蒸发,观察到了沸腾反转现象,即随着热通量的增加,过热度降低,从而导致超高的 HTC。通过克服液气逆流,即协同促进气泡逸出和液体渗透,获得了前所未有的 CHF。在 1 平方厘米的加热面积上,喷雾冷却的最大热通量为 1273 W/cm2,HTC 为 443.7 kW/(m2 K),实现了破纪录的传热性能。
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来源期刊
Science Bulletin
Science Bulletin MULTIDISCIPLINARY SCIENCES-
CiteScore
24.60
自引率
2.10%
发文量
8092
期刊介绍: Science Bulletin (Sci. Bull., formerly known as Chinese Science Bulletin) is a multidisciplinary academic journal supervised by the Chinese Academy of Sciences (CAS) and co-sponsored by the CAS and the National Natural Science Foundation of China (NSFC). Sci. Bull. is a semi-monthly international journal publishing high-caliber peer-reviewed research on a broad range of natural sciences and high-tech fields on the basis of its originality, scientific significance and whether it is of general interest. In addition, we are committed to serving the scientific community with immediate, authoritative news and valuable insights into upcoming trends around the globe.
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