Investigation of SAW atomization

A. Qi, J. Friend, L. Yeo
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引用次数: 10

Abstract

Surface acoustic wave atomization is promising in various kinds of industrial and pharmaceutical processes. In order to properly apply this technology for a wide range of applications, controlling the aerosol size distribution is crucial. It is widely believed that the aerosol size can be controlled by the driving frequency, our experimental results, show a rather weak frequency dependence, especially when the driving frequency is above 10 MHz. Fundamental studies were therefore carried out to determine the underlying mechanism associated with the destabilization of the liquid interface leading towards atomization with the objective of elucidating this apparent contradiction. Our investigation supports the notion that the droplet sizes appear to be governed by the capillary vibration frequency given by a balance between the capillary stress and viscous forcing, not the driving frequency as previously claimed. Furthermore, the aerosol size can be altered by controlling the surface tension and viscosity. For this case, we employ the laser diffraction to obtain the size distributions of octanol aerosol and water aerosol generated by SAWatomization. The experimental results matches our theocratical prediction that water, with higher surface tension and lower viscosity, generates relatively larger aerosols than octanol.
SAW雾化的研究
表面声波雾化技术在各种工业和制药工艺中具有广阔的应用前景。为了更广泛地应用该技术,控制气溶胶粒径分布是至关重要的。人们普遍认为,气溶胶的大小可以通过驱动频率来控制,我们的实验结果表明,频率依赖性较弱,特别是当驱动频率在10 MHz以上时。因此,进行了基础研究,以确定与导致雾化的液体界面不稳定相关的潜在机制,目的是阐明这一明显的矛盾。我们的研究支持这样一种观点,即液滴的大小似乎是由毛细管应力和粘性力之间的平衡所给出的毛细管振动频率决定的,而不是像以前声称的那样由驱动频率决定的。此外,可以通过控制表面张力和粘度来改变气溶胶的大小。在这种情况下,我们利用激光衍射得到了SAWatomization所产生的辛醇气溶胶和水气溶胶的尺寸分布。实验结果与我们的神权理论预测相吻合,即具有较高表面张力和较低粘度的水比辛醇产生相对较大的气溶胶。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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