Experimental Analysis and CFD Modelling of the Flow Conditions inside an Air-Core-Liquid-Ring Atomizer

Miguel A. Ballesteros, V. Gaukel
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引用次数: 1

Abstract

- The Air-Core-Liquid-Ring (ACLR) atomization is an innovative internal-mixing pneumatic atomization technique, suitable for energy-efficient spray drying because of its ability to handle highly viscous liquid feeds with high solid contents. However, pneumatic atomizers such as the ACLR can suffer from unstable internal flow conditions, which may lead to a wide variation in the droplet diameter obtained. Therefore, the internal flow conditions of an ACLR-atomizer prototype needed to be studied and comprehended. With that in mind, a computational fluid dynamic (CFD) model was developed, and tested with experimental data collected for different gas pressures and liquid feed viscosities. A mesh independence study, as well as some testing of Physics models were performed. A mixed polyhedral – prismatic mesh was generated, and the k-ω SST model was selected as it showed a good balance between representation of the turbulence in the system and computational effort. The predicted average lamella thickness is similar with experimental results, with an average 10 % error, but the thickness variations observed in the experiments dampen quickly over time in the simulations. This is not the case in the experiments with the higher viscous maltodextrin solution. Therefore, further model refining has still to be done. Nonetheless, the flow behaves as expected in the CFD simulation with changes in pressure and liquid viscosity. This opens up the possibilities of doing more in-detail CFD studies of the effect of liquid feed properties and geometrical variations of the nozzle.
气芯-液环雾化器内部流动条件的实验分析与CFD建模
- Air-Core-Liquid-Ring (ACLR)雾化是一种创新的内部混合气动雾化技术,适用于节能喷雾干燥,因为它能够处理高固体含量的高粘性液体饲料。然而,像ACLR这样的气动雾化器可能遭受不稳定的内部流动条件,这可能导致获得的液滴直径变化很大。因此,需要对aclr -雾化器原型机的内部流动状况进行研究和了解。考虑到这一点,开发了计算流体动力学(CFD)模型,并使用收集的不同气体压力和液体进料粘度的实验数据进行了测试。进行了网格独立性研究,并对物理模型进行了测试。生成了一个混合多面体-棱镜网格,选择k-ω海表温度模型,因为它在系统湍流的表征和计算量之间表现出很好的平衡。预测的平均薄片厚度与实验结果相似,平均误差为10%,但实验中观察到的厚度变化在模拟中随着时间的推移迅速衰减。在用粘度较高的麦芽糊精溶液进行的实验中,情况并非如此。因此,还需要进一步完善模型。然而,在CFD模拟中,随着压力和液体粘度的变化,流体的流动行为与预期的一致。这为对液体进料特性和喷嘴几何变化的影响进行更详细的CFD研究提供了可能性。
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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