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The Influence of the Magnitude of Gravitational Acceleration on Marangoni Convection About an Isolated Bubble under a Heated Wall

机译:重力加速度的大小对加热壁下孤立气泡的Marangoni对流的影响

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Thermocapillary or Marangoni convection is the liquid motion caused by surface tension variation in the presence of a temperature gradient along a gas-liquid or vapor-liquid interface. This work numerically investigates the effect of the magnitude of gravitational acceleration on the flow and temperature fields resulting from the presence of a hemispherical air bubble of constant radius of 1.0 mm, situated on a heated wall immersed in a liquid silicone oil layer of constant depth of 5.0 mm. The model is oriented such that the Marangoni and gravitational forces act to oppose one another. To elucidate the effect of gravity on Marangoni flow and heat transfer, the simulations were carried out for a silicone oil of Prandtl number 83, at a Marangoni number of 915. The gravity levels tested were Og, 0.01 g, 0.1g, 0.25g, 0.5g, 0.75g, and Ig, where g represents the earth gravitational acceleration of 9.81 m/s~2. The influence of the magnitude of gravitational acceleration on the velocity profile along the bubble interface and on the location of maximum velocity was analyzed. It was found that the gravity level affects the velocity profile by influencing the interfacial temperature gradient, but that the location of maximum velocity was almost independent of gravity level. The increase in heat flux on the wall to which the bubble is attached was calculated and it has been determined that local heat transfer enhancement of up to nearly 1.7 times that of the conduction only case can be achieved for the parameter range tested. Furthermore, local enhancement was observed to occur up to a distance of seven bubble radii for the zero-gravity case, but increased gravity levels cause a reduction in the effective radius of enhancement. The influence of the Marangoni flow on the heat transfer for the opposite cooled wall has also been analyzed.
机译:热毛细对流或马朗戈尼对流是指在沿气-液或气-液界面存在温度梯度的情况下,由表面张力变化引起的液体运动。这项工作从数值上研究了重力加速度对流场和温度场的影响,该流场和温度场是由于存在于半径为1.0 mm的半球形气泡而引起的,该气泡位于浸没在恒定深度的液态硅油层中的加热壁上。 5.0毫米该模型的方向应使Marangoni和万有引力相互作用。为了阐明重力对Marangoni流动和传热的影响,对以Marangoni数为915的Prandtl数为83的硅油进行了仿真。测试的重力水平为Og,0.01 g,0.1g,0.25g, 0.5g,0.75g和Ig,其中g表示地球重力加速度为9.81 m / s〜2。分析了重力加速度的大小对沿气泡界面的速度分布以及最大速度位置的影响。发现重力水平通过影响界面温度梯度影响速度分布,但是最大速度的位置几乎与重力水平无关。计算了气泡附着在其上的壁上的热通量的增加,并且已经确定对于所测试的参数范围,局部热传递增强可以达到仅导热情况的近1.7倍。此外,在零重力情况下,观察到局部增强作用发生的距离最大为七个气泡半径,但是重力水平的增加导致增强作用的有效半径减小。还分析了马兰戈尼流对相对的冷却壁传热的影响。

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