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Evaluating effective volume and hydrodynamic behavior in a full-scale ozone contactor with computational fluid dynamics simulation

机译:通过计算流体动力学模拟评估全尺寸臭氧接触器的有效体积和流体动力学行为

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An ozone reaction model combined with CFD (Computational Fluid Dynamics) technique was developed in this research. In the simulation of ozonation, hydrodynamic behavior caused by bubbling of ozone contacting-gas is important as well as reaction kinetics. CFD technique elucidated hydrodynamic behavior in the selected ozone contactor, which consisted of three main chambers. Back-mixing zone was found in each chamber. The higher velocities of water were observed in the second and third chambers than that in the first one. The flow of the opposite direction to the main flow was observed near the water surface. Based on the results of CFD simulation, each chamber was divided into small compartments, and hydrodynamic behavior and effective volume were discussed. Mass balance equations were also established in each compartment with reaction terms associated with DOC, odor compounds, bacteria, bromide ion and bromate ion. This reaction model was intended to predict dissolved ozone concentration, especially. We concluded that the model could predict favourably the mass balance of ozone, namely absorption efficiency of gaseous ozone, dissolved ozone concentration and ozone consumption. After establishing the model, we discussed the effects of hydrodynamic behavior on dissolved ozone concentration.
机译:本研究开发了结合CFD(计算流体动力学)技术的臭氧反应模型。在模拟臭氧化过程中,由臭氧接触气体鼓泡引起的流体动力学行为以及反应动力学都很重要。 CFD技术阐明了所选臭氧接触器的水动力行为,该接触器由三个主腔组成。在每个室中发现了回混区。在第二和第三腔室中观察到的水速度比在第一腔室中的高。在水面附近观察到与主流方向相反的流动。根据CFD模拟的结果,将每个腔室分成小隔间,并讨论了流体动力学行为和有效容积。在每个隔室中还建立了质量平衡方程,其中的反应项与DOC,气味化合物,细菌,溴离子和溴酸根离子有关。该反应模型旨在预测尤其是溶解的臭氧浓度。我们得出的结论是,该模型可以很好地预测臭氧的质量平衡,即气态臭氧的吸收效率,溶解的臭氧浓度和臭氧消耗量。建立模型后,我们讨论了流体动力学行为对溶解臭氧浓度的影响。

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