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Intensified heat transfer in modulated rotating Rayleigh-Benard convection

机译:调制旋转瑞利-贝纳德对流中的强化传热

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摘要

Heat transfer in a Rayleigh-Benard configuration consisting of a vertical cylinder, which is rotating about its axis, can be intensified considerably when the rotation rate is modulated harmonically in time. Such time-dependent rotation introduces an Euler force into the governing equations which leads to a particular modification of the flow that is shown to support a Nusselt number (Nu) that is considerably higher than in case of constant rotation. We use direct numerical simulation of the incompressible Navier-Stokes equations to perform a comprehensive parameter study of the flow-structuring and associated heat transfer investigating primarily the effect of variations in the frequency with which the rotation rate varies. We consider flow in an upright cylinder of unit aspect ratio which is heated from below and cooled at the top. At sufficiently strong Euler forces the temporal variation of Nu shows a striking dynamics with periods of gradual increase in Nu with more rapid oscillations superimposed, next to rather catastrophic events in which the entire flow-structure that supported high levels of Nu collapses entirely and it returns to a value more similar to that attained at steady rotation. During periods of oscillatory build-up of Nu, high levels of turbulence gradually become more pronounced from the outer cylinder wall inward and a gradually stronger thermal column arises along the centreline of the cylinder. This flow structure can support Nu up to 250% larger than without rotation, a value otherwise achievable only by employing phase transition.
机译:当旋转速度在时间上进行谐波调制时,由绕其轴旋转的垂直圆柱体组成的瑞利-贝纳德(Rayleigh-Benard)构型中的传热可以大大增强。这种与时间有关的旋转将欧拉力引入到控制方程中,从而导致流量的特定变化,该流动被显示为支持比恒定旋转情况大得多的努塞尔特数(Nu)。我们使用不可压缩的Navier-Stokes方程的直接数值模拟来对流动结构和相关的传热进行全面的参数研究,主要研究转速变化频率变化的影响。我们考虑在单位纵横比为直立的圆柱体中流动,该圆柱体从下方加热,在顶部冷却。在足够大的欧拉力作用下,Nu的时间变化表现出惊人的动力学变化,Nu逐渐增加,叠加了更快速的振荡,紧接着是灾难性事件,其中支撑高水平Nu的整个流动结构完全坍塌并返回的值与稳定旋转时获得的值更相似。在Nu的振荡积累期间,从圆柱外壁向内逐渐出现高水平的湍流,并且沿着圆柱的中心线逐渐形成更强的热柱。与没有旋转相比,这种流动结构可以支持多达250%的Nu,否则只能通过使用相变才能获得该值。

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