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首页> 外文期刊>Physics of fluids >Experimental investigation of self-induced thermocapillary convection for an evaporating meniscus in capillary tubes using micro-particle image velocimetry
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Experimental investigation of self-induced thermocapillary convection for an evaporating meniscus in capillary tubes using micro-particle image velocimetry

机译:微粒图像测速法自感热毛细管对流蒸发毛细管中弯月面的实验研究

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摘要

The present paper reports an experimental investigation of the self-induced liquid convection for an evaporating meniscus in small capillary tubes. The strong evaporative cooling at the triple contact line leads to a variation in temperature along the liquid-vapor interface, which generates a gradient of surface tension that in turn drives the observed convection. Ethanol and methanol in three tube sizes (600, 900, and 1630 mu m) were investigated in this study. The flow pattern in the liquid phase has been characterized using a micro-particle image velocimetry (PIV) technique with a vector spatial resolution of 640 nm. Thermocapillary Marangoni convection is observed in horizontal diametrical sections of the horizontally oriented capillary tubes as two contrarotating vortices of similar strength, whereas in vertical diametrical sections a single clockwise vortex is mostly present. This distortion of the flow pattern could be attributed to gravity. The distortion and loss of symmetry in the vertical section is found to exhibit an oscillatory behavior. The convection (represented by the vorticity) is found to be stronger for more volatile liquids and smaller tube sizes. The vorticity normalized with the convective time scale is found to be higher for the less volatile liquid and to increase with the tube radius. Therefore, a further correction of the normalized vorticity using a dimensionless liquid saturated vapor pressure leads to a parameter that is found independent of the tube size and the liquid properties, suggesting that the phenomena described here are universal and dictated by the local conditions near the triple line. (c) 2005 American Institute of Physics.
机译:本文报道了对小型毛细管中的蒸发弯月面的自诱导液体对流的实验研究。三重接触线处的强烈蒸发冷却导致沿液-汽界面的温度变化,从而产生表面张力梯度,进而驱动观察到的对流。在这项研究中,研究了三种尺寸(600、900和1630μm)的乙醇和甲醇。液相中的流型已经使用矢量空间分辨率为640 nm的微粒图像测速(PIV)技术进行了表征。在水平取向的毛细管的水平直径部分中,观察到热毛细Marangoni对流,这是两个强度相似的反向旋涡,而在垂直直径部分中,大多数存在单个顺时针旋涡。流动模式的这种变形可归因于重力。发现垂直截面的变形和对称性丧失表现出振荡行为。对流(以涡度表示)被发现对于挥发性较大的液体和较小的管径而言更强。对于挥发性较小的液体,用对流时间刻度归一化的涡度较高,并且随管半径的增加而增大。因此,使用无量纲的液体饱和蒸气压进一步校正归一化涡度会导致找到一个独立于管尺寸和液体性质的参数,这表明此处描述的现象是普遍的,由三元组附近的局部条件决定线。 (c)2005年美国物理研究所。

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