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首页> 外文期刊>International Journal of Heat and Mass Transfer >Molecular dynamic study of evaporation in nanoslit: Influence of slit geometry and wettability
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Molecular dynamic study of evaporation in nanoslit: Influence of slit geometry and wettability

机译:纳米溶液蒸发的分子动态研究:裂缝几何形状和润湿性的影响

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摘要

A liquid-vapor phase change is an efficient process to transfer thermal energy and has been utilized in much industrial application. To enhance the liquid-vapor phase-change heat transfer, nanoengineered materials, such as nanostructured surface, have been experimentally and numerically investigated so far. Nevertheless, understating how and how much the nanostructured surfaces influence evaporation has not been sufficient. In the present study, we employed the nanoslit systems, inside which fluid molecules initially stayed, and by means of classical molecular dynamics simulations, numerically investigated how the fluid molecules evaporated from the nanoslits, depending on the geometry and the surface wettability of the nanoslits. In the presence of the solid surface in contact with the liquid phase of the fluid, the molecular behaviors changed, especially in the vicinity of the solid wall. Some of the fluid molecules frequently collided with the gas-liquid interface at multiple times. We distinguished the molecular behavior from the reflection, and newly defined it as the retention. In the present study, it was found that, as the solid sidewall became more hydrophilic, the mobility of the molecules on the sidewall surface became higher, increasing the amount of the evaporation molecules traveling along the sidewalls. It was because the intermolecular potential was low in the vicinity of the solid walls. When the wettability of the sidewalls differed, the fluid molecules were attracted to the more hydrophilic sidewall. It caused that the gas-liquid interface got closer to the slit boundary. If the distance between the gas-liquid interface and the slit boundary was relatively short, the amount of the retention near the gas-liquid interface decreased.
机译:液相变化是转移热能的有效过程,并且已经在很多工业应用中使用。为了增强液体蒸气相变传热,目前且数值研究了纳米型材料,例如纳米结构表面,如纳米结构表面。然而,低估了纳米结构表面影响蒸发的方式以及多少。在本研究中,我们使用纳米溶液系统,其中流体分子最初停留,并且通过经典的分子动力学模拟,数值研究了根据纳米螺纹的几何形状和表面润湿性的流体分子的蒸发。在与流体的液相接触的固体表面存在下,分子行为改变,特别是在固体壁附近。一些流体分子经常在多次与气液界面碰撞。我们区分了从反射的分子行为,并将其新定义为保留。在本研究中,发现,随着固体侧壁变得更亲水的,分子在侧壁表面上的迁移率变高,增加了沿着侧壁行进的蒸发分子的量。这是因为在固体壁附近的分子间电位低。当侧壁的润湿性不同时,流体分子被吸引到更亲水的侧壁。它导致气液界面更接近狭缝边界。如果气液界面和狭缝边界之间的距离相对较短,则气液界面附近的保持量减少。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第12期|120463.1-120463.22|共22页
  • 作者单位

    Department of Mechanical Engineering Osaka University 2-1 Yamadaoka Suita Osaka 565-0871 Japan;

    Department of Mechanical Engineering Osaka University 2-1 Yamadaoka Suita Osaka 565-0871 Japan;

    Department of Mechanical Engineering Osaka University 2-1 Yamadaoka Suita Osaka 565-0871 Japan;

  • 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
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