首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical investigation of coalescence-induced droplet jumping on superhydrophobic surfaces for efficient dropwise condensation heat transfer
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Numerical investigation of coalescence-induced droplet jumping on superhydrophobic surfaces for efficient dropwise condensation heat transfer

机译:凝聚诱导的液滴在超疏水表面上跳跃的数值研究,以进行有效的逐滴冷凝传热

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摘要

Dropwise condensation has much higher heat transfer efficiency than the filmwise condensation, hence it will be widely applied in power generation, waste heat recovery, refrigeration etc. The spontaneous coalescence-induced droplet jumping on superhydrophobic surfaces was an effective way to maintain highly efficient dropwise condensation. In our study, the coalescence-induced droplet jumping process was numerically studied through transient three-dimensional diffuse interface method. The effect of contact angle and its hysteresis, droplet size, viscosity and gravity on the jumping process was studied in details, energy conversions were also provided among the droplet surface energy, viscous dissipation, kinetic energy and gravitational energy. Our study showed that contact angle had negative effect on the jumping velocity, with the decreasing contact angle, both peak jumping velocities and radius range for droplet jumping would be reduced. For the capillary-inertia] process the normalized droplet jumping velocity was at the order of 0.2. Although more than half of the released surface energy could be converted into the kinetic energy, only less than 10% of the released surface energy could be converted into the translational kinetic energy for droplet jumping. The contact angle hysteresis had significant effect on the droplet jumping, the larger advancing contact angle could help improve the droplet jumping velocity, while the lower receding contact angle could reduce the droplet jumping velocity. Our results might provide useful guideline for design of efficient dropwise condensation heat transfer through coalescence-induced droplet jumping on superhydrophobic surfaces.
机译:滴状冷凝比膜状冷凝具有更高的传热效率,因此将被广泛用于发电,废热回收,制冷等。自发聚结引起的液滴在超疏水性表面上跳跃是保持高效滴状冷凝的有效方法。 。在我们的研究中,通过瞬态三维扩散界面方法对聚结引起的液滴跳跃过程进行了数值研究。详细研究了接触角及其滞后,液滴尺寸,粘度和重力对跳跃过程的影响,并在液滴表面能,粘性耗散,动能和重力能之间进行了能量转换。我们的研究表明,接触角对跳跃速度有负面影响,随着接触角的减小,峰值跳跃速度和液滴跳跃半径范围都会减小。对于毛细管惯性过程,标准化的液滴跳跃速度约为0.2。尽管可以将超过一半的释放表面能转换成动能,但只有不到10%的释放表面能可以转换成用于液滴跳跃的平移动能。接触角滞后对液滴跳跃有显着影响,较大的前进接触角可以帮助提高液滴跳跃速度,而较小的后退接触角可以降低液滴跳跃速度。我们的结果可能为通过超疏水表面上的聚结诱导液滴跳跃而进行有效的逐滴冷凝传热设计提供有用的指导。

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  • 作者单位

    Beijing Key Laboratory of Multiphase Flow and Heat Transfer for Low Grade Energy, North China Electric Power University, Beijing 102206, China,School of Engineering and Materials Sciences, Queen Mary University of London, Mile End Road, London E1 4NS, United Kingdom;

    Beijing Key Laboratory of Multiphase Flow and Heat Transfer for Low Grade Energy, North China Electric Power University, Beijing 102206, China;

    School of Engineering and Materials Sciences, Queen Mary University of London, Mile End Road, London E1 4NS, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Droplet jumping; Multiphase flow; Condensation heat transfer; Diffuse interface method; Contact angle hysteresis;

    机译:液滴跳跃;多相流;冷凝传热;扩散接口方法;接触角滞后;

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