Numerical study of enhanced boiling phenomena on vertically oriented surfaces with heterogeneous wettability: Lattice Boltzmann method

IF 3.6 2区 工程技术 Q1 MECHANICS
Junjie Yuan , Li Liu , Ruiqi Bao , Haotian Luo , Zheng Jia , Shuo Chen , Hanyang Gu
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Abstract

Enhancing the heat transfer efficiency of exchanger tubes can reduce energy waste and lower the likelihood of tube rupture accidents. Employing mixed wettability treatment on the surface serves as a potent strategy to elevate heat transfer properties. This paper investigates the dynamic behavior of boiling bubbles adhering to a vertical surface, alongside assessing the associated heat transfer performance, utilizing the lattice Boltzmann method (LBM). The influences of hydrophobic region characteristics (spacing, width) and surface wettability, on bubble dynamics, and surface heat flux are investigated. The results show that at low superheat, the bubbles first nucleate and grow in the hydrophobic region, then slip into the hydrophilic region and leave the surface. At high superheat, the bubbles merge and form a vapor film. Driven by buoyancy, gravity, and surface tension, the vapor film moves in a wave-like manner across the surface, and a rewetting area appears at the hydrophilic-hydrophobic boundary. The heat flux at the surface increases with the increase of hydrophobic region width and spacing. It is important to note that the increase in hydrophobic region width promotes heat transfer only at low superheat, while the promotion effect of increasing the spacing is seen at high superheat. Additionally, a surface exhibiting moderate hydrophilicity demonstrates optimal heat transfer efficiency at high superheat conditions. Under the research conditions of this paper, the heat transfer enhancement rate of the mixed wetting surface is as high as 120.2 % compared to that of a purely hydrophilic surface.

Abstract Image

提高换热器管的换热效率,可以减少能源浪费,降低管破裂事故发生的可能性。在表面采用混合润湿性处理是提高传热性能的有效策略。本文利用晶格玻尔兹曼方法(LBM)研究了沸腾气泡粘附在垂直表面的动态行为,同时评估了相关的传热性能。研究了疏水区特性(间距、宽度)和表面润湿性对气泡动力学和表面热通量的影响。结果表明:在低过热条件下,气泡首先在疏水区成核生长,然后滑入亲水区并离开表面;在高温下,气泡合并并形成蒸汽膜。在浮力、重力和表面张力的驱动下,蒸汽膜以波状的方式在表面移动,在亲疏水边界处出现了再润湿区。表面热流密度随疏水区宽度和间距的增大而增大。需要注意的是,疏水区宽度的增加只在低过热度下对换热有促进作用,而增加疏水区间距对高过热度下的换热有促进作用。此外,具有中等亲水性的表面在高过热条件下表现出最佳的传热效率。在本文研究条件下,与纯亲水表面相比,混合润湿表面的传热强化率高达120.2%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.30
自引率
10.50%
发文量
244
审稿时长
4 months
期刊介绍: The International Journal of Multiphase Flow publishes analytical, numerical and experimental articles of lasting interest. The scope of the journal includes all aspects of mass, momentum and energy exchange phenomena among different phases such as occur in disperse flows, gas–liquid and liquid–liquid flows, flows in porous media, boiling, granular flows and others. The journal publishes full papers, brief communications and conference announcements.
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