Jingjing Zhai, Jie Zhang, Liyuan Xu, Qiankai Liu, Liang Li, Ning He, Shiwei Zhang and Xiuqing Hao*,
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引用次数: 0
摘要
随着电子集成技术的飞速发展,对散热设备的工作环境和稳定性的要求也越来越严格。因此,研究高效气液两相传热表面具有重要意义。针对传热过程中温度梯度导致的液体传输性能受限问题,本文将润湿梯度与形状梯度相结合,提出了一种可梯度润湿的多楔花纹表面,在这种表面上,液滴可以长距离、高速度传输。本文通过设计多刃亲水图案并调整疏水区域的润湿特性,研究了平均润湿梯度对液滴传输性能的影响。研究重点是梯度润湿多楔图案表面的抗温度梯度能力,通过理论分析对表面的抗温度梯度能力进行机理解释。研究表明,梯度润湿性多楔花纹表面对阻碍液滴运动的温度梯度具有更好的抵抗能力,在 0.59 °C/mm 的温度梯度下,液滴仍能以平均速度 ∼158 mm/s 实现 ∼38 mm 的传输。本文的研究为传热表面温度梯度电阻的应用提供了一些启示,有助于电子集成环境的散热方法。
Gradient-Wettable Multiwedge Patterned Surface for Effective Transport of Droplets against the Temperature Gradient
With the rapid advancement of electronic integration technology, the requirements for the working environment and stability of the heat dissipation equipment have become increasingly stringent. Consequently, studying a high-efficiency gas–liquid two-phase heat transfer surface holds significant importance. Aiming at the limited liquid transport performance caused by the temperature gradient in the heat transfer process, this paper combines the wetting gradient with the shape gradient and proposes a gradient-wettable multiwedge patterned surface, where droplets can be transported over long distances and at high velocities. In this paper, the effect of the average wetting gradient on droplet transport performance is investigated by designing a multiwedge hydrophilic pattern and adjusting the wetting properties of the hydrophobic region. The study focuses on the temperature gradient resistance of gradient-wettable, multiwedge patterned surfaces, providing a mechanistic explanation of the surface’s ability to resist temperature gradients through theoretical analysis. It is shown that the gradient wettability multiwedge patterned surface has better resistance to the temperature gradient that hinders the droplet movement, and the droplets can still achieve transport of ∼38 mm at an average speed of ∼158 mm/s under the temperature gradient of 0.59 °C/mm. The research in this paper provides some insights into the application of temperature gradient resistance on heat transfer surfaces and contributes to heat dissipation methods for electronic integrated environments.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.