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Combined thermocapillary and buoyancy-driven convection within short-duration pulse-heated liquid droplets

机译:短时脉冲加热液滴内热毛细管和浮力驱动对流的组合

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摘要

Buoyancy-driven convection and its interaction with thermocapillary flow within short-duration-heated liquid droplets was studied computationally. A parametric study was conducted to investigate the effect of the Grashof number Gr and the surface-tension Reynolds number Re for fluids with different Prandtl numbers Pr having both negative and positive surface-tension temperature coefficients ( partial σ/ partial T). Both the additive and impeding effects of buoyancy-driven convection on the thermocapillary flow were observed. The numerical analysis indicated that the buoyancy-driven convection has a weak effect on low-Pr fluids during the short-pulse-heating condition. For mid-Pr fluids the buoyancy effect is more prominent. In monitoring the history of the surface temperature rise, it was found that the buoyancy-driven convection has a weak effect for low-Pr fluids at the side and bottom observation points, whereas buoyancy-driven convection has substantial influence at the bottom observation point for mid-Pr fluids with a positive surface-tension temperature coefficient. It was concluded that the presence of additive or impeding modes depends not only on the sign of the surface-tension temperature coefficient of fluids as proposed by other researchers, but also on Pr, geometry, and boundary conditions. The finite-time-pulse duration effect was also simulated, and it was concluded that the finite-time pulse enhances both modes of convection.
机译:通过计算研究了短时加热液滴内的浮力驱动对流及其与热毛细流的相互作用。进行了参数研究,以研究格拉斯霍夫数Gr和表面张力雷诺数Re对具有不同的正负表面张力温度系数(部分σ/部分T)的普朗特数Pr的流体的影响。观察到浮力驱动的对流对热毛细流动的累加和阻碍作用。数值分析表明,浮力驱动的对流在短脉冲加热条件下对低-流体的影响较弱。对于中Pr流体,其浮力作用更为突出。在监测表面温度升高的历史记录中,发现浮力驱动的对流在侧面和底部观测点对低Pr流体的影响较弱,而浮力驱动的对流在底部观测点对底部观测点的影响很大。表面张力温度系数为正的中Pr流体。结论是,加性或阻碍模式的存在不仅取决于其他研究人员提出的流体的表面张力温度系数的符号,而且取决于Pr,几何形状和边界条件。还模拟了有限时间脉冲的持续时间效应,并得出结论,有限时间脉冲增强了两种对流模式。

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