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Experimental and Numerical Study on Sensible Heat Transfer at Droplet/Wall Interactions

机译:液滴/壁相互作用下传热的实验与数值研究

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摘要

The present study addresses a detailed experimental and numerical investigation on the impact of water droplets on smooth heated surfaces. High-speed infrared thermography is combined with high-speed imaging to couple the heat transfer and fluid dynamic processes occurring at droplet impact. Droplet spreading (e.g. spreading ratio) and detailed surface temperature fields are then evaluated in time and compared with the numerically predicted results. The numerical reproduction of the phenomena was conducted using an enhanced version of a VOF-based solver of OpenFOAM previously developed, which was further modified to account for conjugate heat transfer between the solid and fluid domains, focusing only on the sensible heat removed during droplet spreading. An excellent agreement is observed between the temporal evolution of the experimentally measured and the numerically predicted spreading factors (differences between the experimental and numerical values were always lower than 3.4%). The numerical and experimental dimensionless surface temperature profiles along the droplet radius were also in good agreement, depicting a maximum difference of 0.19. Deeper analysis coupling fluid dynamics and heat transfer processes was also performed, evidencing a strong correlation between maximum and minimum temperature values and heat transfer coefficients with the vorticity fields in the lamella, which lead to particular mixing processes in the boundary layer region. The correlation between the resulted temperature fields and the droplet dynamics was obtained by assuming a relation between the vorticity and the local heat transfer coefficient, in the first fluid cell i.e. near the liquid-solid interface. The two measured fields revealed that local maxima and minima in the vorticity corresponded to spatially shifted local minima and maxima in the heat transfer coefficient, at all stages of the droplet spreading. This was particularly clear in the rim region, which therefore should be considered in future droplet spreading models.
机译:本研究针对水滴对光滑受热表面的影响进行了详细的实验和数值研究。高速红外热成像技术与高速成像技术相结合,将液滴撞击时发生的传热和流体动力学过程耦合在一起。然后及时评估液滴散布(例如散布比)和详细的表面温度场,并将其与数值预测结果进行比较。使用先前开发的OpenFOAM基于VOF的求解器的增强版本对现象进行了数值再现,对该求解器进行了改进,以解决固相和流体域之间的共轭传热问题,仅关注液滴散布过程中去除的显热。 。在实验测量的时间演变和数字预测的扩展因子之间观察到极好的一致性(实验值与数值之间的差异始终小于3.4%)。沿液滴半径的数值和实验无因次表面温度曲线也非常吻合,最大差异为0.19。还进行了更深层的分析,将流体动力学和传热过程耦合在一起,证明最大和最小温度值和传热系数与薄层中的涡度场之间存在很强的相关性,从而导致边界层区域发生特定的混合过程。通过假设第一流体单元中,即靠近液-固界面处的涡度和局部传热系数之间的关系,可以得到结果温度场与液滴动力学之间的相关性。两个测量场表明,在液滴扩散的所有阶段,涡旋的局部最大值和最小值对应于传热系数的空间移位局部最小值和最大值。这在边缘区域特别明显,因此应在以后的液滴扩散模型中考虑。

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