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Simulation of mass transfer from an oscillating microdroplet

机译:模拟振荡微滴的传质

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Mass transfer from micrometer and sub-micrometer airborne microdroplets arises in various chemical process, material science, and atmospheric phenomena, such as impinging flow reactor and unsteady pollutant diffusion, where microdroplet oscillation can substantially increase the mass transfer rate. Previous theories, however, do not adequately predict this enhancement of mass transfer, especially in the case of relatively large-amplitude oscillations. We have analyzed slow evaporation of an oscillating microdroplet having a sufficiently low vapor pressure such that it remains at the surrounding gas temperature and has a negligibly small rate of change of diameter. We solved the governing convective diffusion equation numerically to obtain the Sherwood number as a function of the system parameters. These include the oscillation frequency, the maximum velocity, and the initial microdroplet diameter. The theoretical results are compared with mass transfer data from the literature for a dodecanol microdroplet levitated in an electrodynamic balance (EDB) and oscillated by varying the dc levitation voltage and the ac amplitude and frequency. The predicted Sherwood numbers agree with the experimental results with a mean deviation of 9.2%. The analysis shows a distinct periodic change in the mass transfer rate or Sherwood number with a period that is one-half the period of oscillation of the microdroplet.
机译:微米级和亚微米级空气传播微滴的质量转移发生在各种化学过程,材料科学和大气现象中,例如撞击流动反应器和不稳定的污染物扩散,其中微滴振荡会大大提高质量转移率。但是,先前的理论不能充分预测传质的这种增强,特别是在振幅较大的振荡情况下。我们已经分析了振荡微滴的缓慢蒸发,该振荡微滴具有足够低的蒸气压,以使其保持在周围的气体温度下,并且直径变化率可忽略不计。我们用数值方法求解了控制对流扩散方程,以获得与系统参数有关的舍伍德数。这些包括振荡频率,最大速度和初始微滴直径。将理论结果与文献中传质在电动平衡(EDB)中悬浮并通过改变直流悬浮电压以及交流幅度和频率进行振荡的十二烷醇微滴的传质数据进行比较。预测的舍伍德数与实验结果一致,平均偏差为9.2%。分析显示传质速率或舍伍德数的明显周期性变化,其周期为微滴振荡周期的一半。

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