A three-phase Eulerian–Lagrangian model to simulate mixing and oxygen transfer in activated sludge treatment

IF 3.6 2区 工程技术 Q1 MECHANICS
Boyang Chen, Bruño Fraga, Hassan Hemida
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引用次数: 1

Abstract

We introduce a novel modelling tool for the activated sludge process (ASP) based on large-eddy simulation and multiphase Eulerian–Lagrangian coupling. Aeration-driven sludge activation is a key part of wastewater treatment and represents the vast majority of its energy consumption. Our model allows interaction among the liquid (wastewater), solid (sludge) and gas (air bubbles) phases, to provide insight on the fluid dynamics taking place during ASP. The model uses an Eulerian–Lagrangian point-particle algorithm that respects the discrete nature of both sludge flocs and air bubbles. Four-way coupling is implemented, where the interaction between solid particles is handled by a soft-sphere collision model. The analysis was focused on quantifying the Oxygen transfer from gas to liquid to solid, i.e., the conditions for aerobic bacteria activation. Such transfer is complex due to the dispersed nature of the gas and solid phases and the turbulent mixing occurring in the tank. Unlike box-modelling approaches, our three-dimensional model describes the evolution in space and time of the concentrations of these species and the Oxygen exchange, without a priori assumptions on the nature of the mixture. The model was validated versus experimental data using the interphase exchange of Oxygen as the key parameter, exhibiting in all cases an excellent agreement with measurements that qualitatively improves Eulerian–Eulerian approaches in five different tests. Subsequently our model was used to simulate a realistic scenario within the aeration basin of a wastewater plant and explore its results across a wide parameter range (aerator distribution, dissolved Oxygen levels, air flow rate, sludge size, bubble size). This allow us the explore the time evolution of the activation process and therefore test its performance versus the air flow rate injected (hence, energy). Our results indicate that the initial dissolved Oxygen levels within the basin (related to weather conditions and aeration frequency) are critical for sludge activation, with initial anoxic conditions being very taxing. For a given flow rate, bubble screens (i.e, more aerators) provide significantly better performance. Finally, we compare model estimations of bacterial Oxygen uptake with field data obtained from real-life ASP in wastewater plants, finding a good agreement. We therefore present to the community a reliable and extendable model that solves the fluid mechanics and the basic eco-hydraulics of the three-phase system encountered in wastewater plants, with minimal empirical inputs. This is a valuable and precise tool to test the operations and design of ASP and similar processes.

Abstract Image

模拟活性污泥处理中混合和氧转移的三相欧拉-拉格朗日模型
介绍了一种基于大涡模拟和多相欧拉-拉格朗日耦合的活性污泥过程(ASP)建模工具。曝气污泥活化是污水处理的关键环节,占污水处理能耗的绝大部分。我们的模型允许液体(废水),固体(污泥)和气体(气泡)相之间的相互作用,以提供ASP过程中发生的流体动力学的见解。该模型采用欧拉-拉格朗日点粒子算法,该算法尊重污泥絮凝体和气泡的离散性。实现了四向耦合,其中固体粒子之间的相互作用由软球碰撞模型处理。分析的重点是量化氧气从气体到液体再到固体的转移,即好氧菌活化的条件。由于气固相的分散性和罐内发生的湍流混合,这种转移是复杂的。与盒子模型方法不同,我们的三维模型描述了这些物种浓度和氧交换在空间和时间上的演变,而没有对混合物的性质进行先验假设。利用氧的相间交换作为关键参数,对实验数据进行了验证,在所有情况下都与测量结果非常吻合,在五个不同的测试中定性地改进了欧拉-欧拉方法。随后,我们的模型被用于模拟污水厂曝气池内的现实场景,并在广泛的参数范围内(曝气器分布、溶解氧水平、空气流速、污泥大小、气泡大小)探索其结果。这使我们能够探索激活过程的时间演变,从而测试其性能与注入的空气流量(因此,能量)。我们的研究结果表明,池内初始溶解氧水平(与天气条件和曝气频率有关)对污泥活化至关重要,初始缺氧条件非常费力。对于给定的流量,气泡筛(即更多的曝气器)提供明显更好的性能。最后,我们将模型估计的细菌摄氧量与从污水厂实际ASP中获得的现场数据进行了比较,发现两者吻合良好。因此,我们向社区提出了一个可靠且可扩展的模型,该模型解决了污水处理厂中遇到的三相系统的流体力学和基本生态水力学问题,并且具有最小的经验输入。这是测试ASP和类似程序的操作和设计的一个有价值和精确的工具。
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来源期刊
CiteScore
7.30
自引率
10.50%
发文量
244
审稿时长
4 months
期刊介绍: The International Journal of Multiphase Flow publishes analytical, numerical and experimental articles of lasting interest. The scope of the journal includes all aspects of mass, momentum and energy exchange phenomena among different phases such as occur in disperse flows, gas–liquid and liquid–liquid flows, flows in porous media, boiling, granular flows and others. The journal publishes full papers, brief communications and conference announcements.
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