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Interaction of droplet dispersion and evaporation in a polydispersed spray

机译:液滴分散体的相互作用和蒸发在多分散喷雾中的蒸发

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摘要

The interaction between droplet dispersion and evaporation in an acetone spray evaporating under ambient conditions is experimentally studied with an aim to understand the physics behind the spatial correlation between the local vapour mass fraction and droplets. The influence of gas-phase turbulence and droplet-gas slip velocity of such correlations is examined, while the focus is on the consequence of droplet clustering on collective evaporation of droplet clouds. Simultaneous and planar measurements of droplet size, velocity and number density, and vapour mass fraction around the droplets, were obtained by combining the interferometric laser imaging for droplet sizing and planar laser induced fluorescence techniques Sahu et al, Exp. Fluids, vol. 55, 1673, 2014b, pp. 1-21). Comparison with droplet measurements in a non-evaporating water spray under the same flow conditions showed that droplet evaporation leads to higher fluctuations of droplet number density and velocity relative to the respective mean values. While the mean droplet-gas slip velocity was found to be negligibly small, the vaporization Damkohler number (Da(v)) was approximately 'one', which means the droplet evaporation time and the characteristic time scale of large eddies arc of the same order. Thus, the influence of the convective effect on droplet evaporation is not expected to be significant in comparison to the instantaneous fluctuations of slip velocity, which refers to the direct effect of turbulence. An overall linearly increasing trend was observed in the scatter plot of the instantaneous values of droplet number density (N) and vapour mass fraction (Y-F). Accordingly, the correlation coefficient of fluctuations of vapour mass fraction and droplet number density (R-n*y) was relatively high (approximate to 0.5) implying moderately high correlation. However, considerable spread of the N versus Y-F scatter plot along both coordinates demonstrated the influence on droplet evaporation due to turbulent droplet dispersion, which leads to droplet clustering. The presence of droplet clustering was confirmed by the measurement of spatial correlation coefficient of the fluctuations of droplet number density for different size classes (R-n*n) and the radial distribution function (RDF) of the droplets. Also, the tendency of the droplets to form clusters was higher for the acetone spray than the water spray, indicating that droplet evaporation promoted droplet grouping in the spray. The instantaneous group evaporation number (G) was evaluated from the measured length scale of droplet clusters (by the RDF) and the average droplet size and spacing in instantaneous clusters. The mean value of G suggests an internal group evaporation mode of the droplet clouds near the spray centre, while single droplet evaporation prevails near the spray boundary. However, the large fluctuations in the magnitude of instantaneous values of G at all measurement locations implied temporal variations in the mode of droplet cloud evaporation.
机译:实验研究了在环境条件下在环境条件下蒸发的丙酮喷雾蒸发中的滴定分散和蒸发之间的相互作用,目的是理解局部蒸汽质量分数和液滴之间的空间相关背后的物理学。检查了这种相关性的气相湍流和液滴 - 气体滑移速度的影响,同时重点是液滴聚类对液滴云集体蒸发的结果。通过组合用于液滴尺寸的干涉激光成像和平面激光诱导的荧光技术Sahu等,EXP,通过组合干涉激光成像来同时和平面测量液滴周围的液滴围绕液滴周围的液滴。液体,Vol。 55,1673,2014b,pp。1-21)。与在相同的流动条件下的非蒸发水喷雾中的液滴测量的比较显示,液滴蒸发导致相对于相应平均值的液滴数密度和速度的较高波动。虽然发现平均液滴 - 气体滑移速度是可忽略的小的,但蒸发达摩尔号(DA(V))约为“一个”,这意味着液滴蒸发时间和相同顺序的大漩涡弧的特征时间尺度。因此,与滑动速度的瞬时波动相比,对对流效应对液滴蒸发的影响是显着的,这是指湍流的直接效果。在液滴数密度(n)和蒸汽质量级分(Y-F)的瞬时值的散点图中观察到整体线性增加的趋势。因此,蒸气质量分数和液滴数密度(R-N * Y)的波动的相关系数相对较高(近似为0.5),暗示中等高的相关性。然而,沿两个坐标的N与Y-F散射图的相当大的扩散证明了由于湍流液滴分散而导致液滴蒸发的影响,这导致液滴聚类。通过测量不同尺寸类(R-N * n)和液滴的径向分布函数(RDF)的液滴数密度波动的空间相关系数来确认液滴聚类的存在。而且,丙酮喷雾的液滴形成簇的趋势比水喷雾更高,表明液滴蒸发促进喷雾中的液滴。从液滴簇(通过RDF)的测量的长度标度和瞬时簇中的平均液滴尺寸和间隔进行评价瞬时组蒸发数(G)。 G的平均值提出了喷雾中心附近的液滴云的内部组蒸发模式,而在喷射边界附近初始液滴普遍存在。然而,在所有测量位置处G的瞬时值大小的大波动暗示了液滴蒸发模式中的时间变化。

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