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Dynamic Leidenfrost temperature on micro-textured surfaces: Acoustic wave absorption into thin vapor layer

机译:微纹理表面上的动态莱顿弗罗斯特温度:声波吸收到薄蒸气层中

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摘要

The dynamic Leidenfrost phenomenon is governed by three types of pressure potentials induced via vapor hydrodynamics, liquid dynamic pressure, and the water hammer effect resulting from the generation of acoustic waves at the liquid-vapor interface. The prediction of the Leidenfrost temperature for a dynamic droplet needs quantitative evaluation and definition for each of the pressure fields. In particular, the textures on a heated surface can significantly affect the vapor hydrodynamics and the water hammer pressure. We present a quantitative model for evaluating the water hammer pressure on micro-textured surfaces taking into account the absorption of acoustic waves into the thin vapor layer. The model demonstrates that the strength of the acoustic flow into the liquid droplet, which directly contributes to the water hammer pressure, depends on the magnitude of the acoustic resistance (impedance) in the droplet and the vapor region. In consequence, the micro-textures of the surface and the increased spacing between them reduce the water hammer coefficient (k(h)) defined as the ratio of the acoustic flow into the droplet to total generated flow. Aided by numerical calculations that solve the laminar Navier-Stokes equation for the vapor flow, we also predict the dynamic Leidenfrost temperature on a micro-textured surface with reliable accuracy consistent with the experimental data. Published by AIP Publishing.
机译:动态莱顿弗罗斯特现象受三种形式的压力势所控制,这些势能是通过蒸气流体力学,液体动压力和在水蒸气界面产生声波而产生的水锤效应引起的。对于动态液滴的莱顿弗罗斯特温度的预测需要对每个压力场进行定量评估和定义。特别是,受热表面上的纹理会显着影响蒸汽流体动力学和水锤压力。考虑到声波吸收到薄蒸汽层中的情况,我们提出了一种用于评估微纹理表面上水锤压力的定量模型。该模型表明,流入液滴的声波强度直接影响水锤压力,取决于液滴和蒸汽区域中的声阻(阻抗)大小。结果,表面的微纹理及其之间增加的间距减小了水锤系数(k(h)),水锤系数定义为进入液滴的声流与总产生流之比。通过求解层流Navier-Stokes方程的蒸汽流动的数值计算的辅助,我们还预测了微织构表面上的动态莱顿弗罗斯特温度,其准确度与实验数据一致。由AIP Publishing发布。

著录项

  • 来源
    《Applied Physics Letters》 |2018年第5期|053902.1-053902.5|共5页
  • 作者

    Jerng Dong Wook; Kim Dong Eok;

  • 作者单位

    Chung Ang Univ, Sch Energy Syst Engn, Seoul 06974, South Korea;

    Kyungpook Natl Univ, Dept Precis Mech Engn, Sangju 37224, South Korea;

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

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