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Analysis of Hydrodynamics and Heat Transfer in a Thin Liquid Film Flowing Over a Rotating Disk by the Integral Method

机译:用积分法分析流过转盘的液膜中的流体动力学和传热

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摘要

An integral analysis of hydrodynamics and heat transfer in a thin liquid film flowing over a rotating disk surface is presented for both constant temperature and constant heat flux boundary conditions. The model is found to capture the correct trends of the liquid film thickness variation over the disk surface and compare reasonably well with experimental results over the range of Reynolds and Rossby numbers covering both inertia and rotation dominated regimes. Nusselt number variation over the disk surface shows two types of behavior. At low rotation rates, the Nusselt number exhibits a radial decay with Nusselt number magnitudes increasing with higher inlet Reynolds number for both constant wall temperature and heat flux cases. At high rotation rates, the Nusselt number profiles exhibit a peak whose location advances radially outward with increasing film Reynolds number or inertia. The results also compare favorably with the full numerical simulation results from an earlier study as well as with the reported experimental results.
机译:给出了在恒定温度和恒定热通量边界条件下流过旋转圆盘表面的薄膜中的流体动力学和传热的积分分析。发现该模型可以捕获磁盘表面上液膜厚度变化的正确趋势,并且可以在涵盖惯性和旋转主导体制的雷诺数和Rossby数范围内与实验结果进行合理比较。磁盘表面上的Nusselt数变化显示两种类型的行为。在低转速下,在恒定壁温和热通量情况下,努塞尔数都呈现出径向衰减,努塞尔数的幅度随着入口雷诺数的增加而增加。在高旋转速率下,Nusselt数轮廓会出现一个峰值,该峰值的位置会随着胶片雷诺数或惯性的增加而径向向外推进。该结果也与早期研究的全部数值模拟结果以及已报道的实验结果相比具有优势。

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