论文标题

Nusselt编号,用于稳定地定期开发的微型和迷你通道中的传热,并具有均匀热通量的偏移带鳍的阵列

Nusselt number for steady periodically developed heat transfer in micro- and mini-channels with arrays of offset strip fins subject to a uniform heat flux

论文作者

Vangeffelen, Arthur, Buckinx, Geert, De Servi, Carlo, Vetrano, Maria Rosaria, Baelmans, Martine

论文摘要

在这项工作中,检查了Nusselt的数量,用于在微型和迷你渠道中定期开发的带有偏移带鳍阵列的热传递,但要遵守恒定的热通量。 Nusselt的数量是根据传热系数定义的,该系数表示在结合热传递过程中流体和固体之间的空间宏观尺度温度差。它的值是在雷诺数为1到600之间的阵列的单个单元上以数值确定的。选择了PrandTL数的两个组合和热导率比,相对于空气和水。结果表明,如果壁温度保持均匀,则文献中的Nusselt数量相关性主要适用于较大常规通道中的过渡流程中的空气。结果,它们无法正确捕获微型和迷你通道中努塞尔数的观察到的趋势,但受到恒定热通量的影响。因此,为空气和水提供了通过2282个数值模拟的最小二乘拟合获得的新的Nusselt数量相关性。这些相关性的适用性通过贝叶斯方法来评估参数估计和模型验证。相关性尊重观察到的偏移片鳍的所有几何参数的渐近趋势和努塞尔数的限制。此外,他们预测Nusselt号码对雷诺数的线性依赖性与这项工作的数据非常吻合。然而,详细的分析揭示了与雷诺数的努塞尔特数字的更复杂的比例,这与潜在的流程度密切相关,尤其是弱和强大的惯性制度。最后,通过62个额外的模拟,说明了材料特性对Nusselt数字的影响,并将其与可用文献进行了比较。

In this work, the Nusselt number is examined for periodically developed heat transfer in micro- and mini-channels with arrays of offset strip fins, subject to a constant heat flux. The Nusselt number is defined on the basis of a heat transfer coefficient which represents the spatially constant macro-scale temperature difference between the fluid and solid during conjugate heat transfer. Its values are determined numerically on a single unit cell of the array for Reynolds numbers between 1 and 600. Two combinations of the Prandtl number and the thermal conductivity ratio are selected, corresponding to air and water. It is shown that the Nusselt number correlations from the literature mainly apply to air in the transitional flow regime in larger conventional channels if the wall temperature remains uniform. As a result, they do not correctly capture the observed trends for the Nusselt number in micro- and mini-channels subject to a constant heat flux. Therefore, new Nusselt number correlations, obtained through a least-squares fitting of 2282 numerical simulations, are presented for air and water. The suitability of these correlations is assessed via the Bayesian approach for parameter estimation and model validation. The correlations respect the observed asymptotic trends and limits of the Nusselt number for all the geometrical parameters of the offset strip fins. In addition, they predict a linear dependence of the Nusselt number on the Reynolds number, in good agreement with the data from this work. Nevertheless, a detailed analysis reveals a more complex scaling of the Nusselt number with the Reynolds number, closely related to the underlying flow regimes, particularly the weak and strong inertia regimes. Finally, through 62 additional simulations, the influence of the material properties on the Nusselt number is illustrated and compared to the available literature.

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