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Characterization of flow, mixing and particle suspension in alumina draft tube precipitators of taller aspect ratio

机译:高长径比氧化铝引流管除尘器中流动,混合和颗粒悬浮的表征

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摘要

Alumina precipitation is a vital rate determining step in the entire Bayer process. Industry scale draft tube precipitator design (Agglomerators and Growth tanks) in Bayer alumina process has the task to uniformly suspend the alumina hydrate particles with minimum power consumption. Lane (2006) reported that during the operation, there always was a difference in particle concentrations in the overflow. In the previous work, computational fluid dynamics (CFD) modeling was carried out to investigate the reasons for the particle variations in two different aspect ratio tanks (H/T = 1.96 and 2.57) using a uniform momentum source impeller model. Also, it was concluded that more frequent upward surging of turbulent flow in the smaller aspect ratio precipitator is responsible for the higher particle concentration in the overflow. It is important to note that the overflow particle concentration will be uniform if particles are uniformly suspended in the entire precipitator volume; else gradients in particle concentration may prevail in the alumina precipitators. Brown et al. (2014) validated CFD modeling of H/T ≤ 2 aspect ratio tank using both uniform momentum source and frozen rotor impeller model. They observed differences in the draft tube region flow pattern between the uniform momentum source and frozen rotor impeller model. It is important to understand the impact of the actual draft tube flow pattern on the overall flow, mixing and particle suspension. Hence, in the present work, investigation has been made in the taller aspect ratio precipitator (H/T = 2.57) using impeller rotation model. The CFD analysis is made for both batch and continuous models whereas the previous authors carried out the analysis in batch model. The present work brings out the importance of an actual impeller rotation model against the constant mass source model using CFD analysis. Also, the work depicts the important role of draft tube slots and operation mode on changes in the annular region flow pattern and particle suspension. The batch precipitator design exhibits a non-swirl flow pattern and the same design in the continuous operation mode reveals a swirl flow pattern in the annular region of the precipitator. The present study conveys the role of impeller rotation, draft tube slots and the effect of annular region flow pattern on mixing and particle suspension.
机译:氧化铝沉淀是整个拜耳法重要的速率决定步骤。拜耳氧化铝工艺的工业规模引流管沉淀器设计(附聚器和生长罐)的任务是以最小的能耗均匀地悬浮氧化铝水合物颗粒。 Lane(2006)报告说,在操作过程中,溢流中的颗粒浓度始终存在差异。在先前的工作中,进行了计算流体动力学(CFD)建模,以使用均匀动量源叶轮模型研究两个不同长宽比罐(H / T = 1.96和2.57)中颗粒变化的原因。此外,得出的结论是,在较小长径比的除尘器中,湍流向上更频繁地涌动是溢流中较高的颗粒浓度的原因。重要的是要注意,如果颗粒均匀地悬浮在整个除尘器体积中,则溢出颗粒的浓度将会均匀。否则在氧化铝沉淀器中可能会出现颗粒浓度梯度。布朗等。 (2014年)使用均匀动量源和冷冻转子叶轮模型验证了H / T≤2长宽比储罐的CFD模型。他们观察到均匀动量源和冷冻转子叶轮模型之间的引流管区域流动模式的差异。重要的是要了解实际引流管流动方式对整体流动,混合和颗粒悬浮的影响。因此,在目前的工作中,已经使用叶轮旋转模型研究了高纵横比的除尘器(H / T = 2.57)。 CFD分析是针对批处理和连续模型进行的,而先前的作者对批处理模型进行了分析。目前的工作利用CFD分析提出了相对于恒定质量源模型的实际叶轮旋转模型的重要性。此外,该工作还描述了引流管缝隙和操作模式对环形区域流动模式和颗粒悬浮液变​​化的重要作用。间歇式除尘器设计显示出非旋流模式,在连续运行模式下的相同设计显示出在除尘器的环形区域中出现了旋流模式。本研究传达了叶轮旋转,尾水管槽的作用以及环形区域流动模式对混合和颗粒悬浮的影响。

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