Influence of Nozzle Geometry and Scale-Up on Oil Droplet Breakup in the Atomization Step during Spray Drying of Emulsions

Fluids Pub Date : 2024-03-07 DOI:10.3390/fluids9030070
Sebastian Höhne, Martha L. Taboada, J. Schröder, Carolina Gomez, H. Karbstein, V. Gaukel
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Abstract

Spray drying of oil-in-water emulsions is a widespread encapsulation technique. The oil droplet size (ODS) significantly impacts encapsulation efficiency and other powder properties. The ODS is commonly set to a specific value during homogenization, assuming that it remains unchanged throughout the process, which is often inaccurate. This study investigated the impact of atomizer geometry and nozzle dimensions on oil droplet breakup during atomization using pressure-swirl atomizers. Subject of the investigation were nozzles that differ in the way the liquid is set in motion, as well as different inlet port and outlet orifice dimensions. The results indicate that nozzle inlet port area may have a significant impact on oil droplet breakup, with x90,3 values of the oil droplet size distribution decreasing from 5.29 to 2.30 µm with a decrease of the inlet area from 2.0 to 0.6 mm. Good scalability of the findings from pilot to industrial-scale was shown using larger nozzles. A simplified theoretical model, aiming to predict the ODS as a function of calculated shear rates, showed reasonable agreement to the experimental data for different atomization pressures with coefficients of determination of up to 0.99. However, it was not able to predict the impact of different nozzle dimensions, most likely due to changes in flow characteristics. These results suggest that the stress history of the oil droplets might have a larger influence than expected. Further studies will need to consider other zones of high stress in addition to the outlet orifice.
喷嘴几何形状和扩大规模对乳液喷雾干燥过程中雾化步骤油滴破裂的影响
水包油乳剂的喷雾干燥是一种广泛应用的封装技术。油滴粒度 (ODS) 对封装效率和其他粉末特性有重大影响。ODS 通常在均化过程中设定为一个特定值,并假定其在整个过程中保持不变,但这往往是不准确的。本研究调查了雾化器几何形状和喷嘴尺寸对使用压力漩涡雾化器进行雾化时油滴破裂的影响。研究对象是液体运动方式不同的喷嘴,以及不同的进口端口和出口孔径。结果表明,喷嘴入口面积可能对油滴破裂有重大影响,当入口面积从 2.0 毫米减小到 0.6 毫米时,油滴粒度分布的 x90,3 值从 5.29 微米减小到 2.30 微米。使用更大的喷嘴可以将研究结果很好地从试验规模扩展到工业规模。简化的理论模型旨在预测作为计算剪切率函数的 ODS,对于不同的雾化压力,该模型与实验数据显示出合理的一致性,确定系数高达 0.99。然而,该模型无法预测不同喷嘴尺寸的影响,这很可能是由于流动特性发生了变化。这些结果表明,油滴的应力历史可能比预期的影响更大。进一步的研究需要考虑除出口孔之外的其他高应力区。
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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