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首页> 外文期刊>International Journal of Thermal Sciences >Flow bifurcation routes to chaos of thermocapillary convection for low Prandtl number fluid in shallow annular pool with surface heat dissipation
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Flow bifurcation routes to chaos of thermocapillary convection for low Prandtl number fluid in shallow annular pool with surface heat dissipation

机译:流动分岔路线在浅环形池中散热下的低Prandtl数流体混沌

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AbstractIn order to understand clearly the transition characteristics of thermocapillary convection of low Prandtl number fluid in shallow annular pool with surface heat dissipation, some bifurcation routes to chaos of thermocapillary convection have been numerically investigated by using the finite volume method in this paper. The annular pool was filled with the low Prandtl (Pr) number fluid ofPr?=?0.011. The range of Biot number is from 0 to 1. Results indicate that the flow bifurcation route of thermocapillary convection depends intensively on surface heat dissipation. When surface heat dissipation is smaller, with the increase of Marangoni number the flow bifurcation sequence of thermocapillary convection is two-dimensional axisymmetric steady flow → three-dimensional steady flow → coexisting hydrothermal waves and radial moving waves → radial moving waves → chaos. When surface heat dissipation is larger, the bifurcation sequence becomes simple as two-dimensional axisymmetric steady flow → hydrothermal waves → chaos. Furthermore, every bifurcation of thermocapillary convection is always accompanied by the variations of the wave number and the oscillatory frequency. Furthermore, the temperature fluctuation amplitude on the free surface increases gradually with the increase of Marangoni number.]]>
机译:<![CDATA [ 抽象 为了清楚地了解浅环形池中的低Prandtl数流体热量对流的过渡特性,具有表面热耗散,通过本文中的有限体积法在数值上研究了一些分叉途径。环形池填充有 pr 斜体>Δ= 0.011。 Biot数的范围为0至1.结果表明热量捕集的流动分叉途径在表面散热方面取决于集中。当表面散热较小时,随着Marangoni号的增加,热量量对流的流动分岔序列是二维轴对称稳态流动→三维稳定流动→共存水热波和径向移动波→径向移动波→混乱。当表面散热较大时,分叉序列变得简单,作为二维轴对称稳定流动→水热波→混沌。此外,热量量对流的每分叉始终伴随波数和振荡频率的变化。此外,随着Marangoni数的增加,自由表面上的温度波动幅度逐渐增加。 ]]>

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