论文标题

表面形态对微米和亚微米大小的2D液滴的相变率的影响

The effect of surface morphology on the rate of phase change of micron and sub-micron sized 2-D droplets

论文作者

Rezaeimoghaddam, Mohammad, Dursunkaya, Zafer

论文摘要

通过相变的热传递是众多工程应用中除量的主要原因。液体的薄膜导致由于电阻的降低而导致的热传递增加,此外,液态蒸气界面处的压力跳跃也会影响相变速率的速率和方向。由于这些作用,底物表面的形态有望影响膜的形状,因此会影响传热,尤其是在薄膜中。在这项研究中,表面特征对微米和亚微米尺寸的2-D液滴的相变率的影响。对底物上无限形成的膜进行了建模。表面膜轮廓是在自然界的平坦和非平板表面上产生的,三角形或波浪形,并且应用了准平衡相变的动力学模型。由于在接触线处存在分子间力,这使增强的年轻宽段方程僵硬的溶液僵硬,因此使用隐式方案进行数值整合。为了验证该方法,将存在于V型表面上的纳米大小液滴的分子动力学(MD)模拟的预测与连续模型进行了比较。增强的年轻岩石方程与源自动力学理论的相变模型一起求解,以计算形成液滴的两相界面的形状,并研究各种参数对相变速率的影响。对于液体压力高和低于蒸气的液滴获得的结果是获得的,导致由于界面处的压力跳跃而产生的相反贡献。结果表明,主要是由于表面形态和不结合压力的综合作用,可以实质上改变传热速率。

Heat transfer via phase change is a major contributor to heat removal in numerous engineering applications. Thin films of liquid result in increased heat transfer due to a reduction of conduction resistance, in addition the pressure jump at the liquid-vapor interface also affects the rate and direction of rate of phase change. Because of these effects the morphology of the substrate surface is expected to affect the film shape, hence heat transfer, especially in thin films. In this study, the influence of surface characteristics on the rate of phase change from micron and sub-micron sized 2-D droplets-i.e. films extending to infinity-forming on a substrate are modeled. Surface film profiles are generated on both flat and non-flat surfaces, triangular or wavy in nature, and a kinetic model for quasi-equilibrium phase change is applied. Due to the presence of intermolecular forces at the contact line, which render the solution of the augmented Young-Laplace equation stiff, an implicit scheme is employed for the numerical integration. To verify the method, the predictions of a molecular dynamics (MD) simulation of a nano sized droplet present on a V-grooved surface is compared to the continuum model. The augmented Young-Laplace equation is solved numerically along with a phase change model originating from kinetic theory to calculate the shape of the two-phase interface forming the droplet and study the effect of various parameters on the rate of phase change. Results are obtained for droplets with liquid pressures higher and lower than that of vapor, resulting in opposite contribution to phase change due to the pressure jump at the interface. The results show that the heat transfer rate can be substantially altered due primarily to the combined effects of surface morphology and disjoining pressure.

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