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Simulation of a reacting gas-liquid bubbly flow with CFD and PBM: Validation with experiments

机译:用CFD和PBM模拟气液反应性气泡流:实验验证

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In this work we use computational fluid dynamics (CFD) to simulate a reactive gas-liquid bubbly system in a rectangular bubble column, operating at low superficial velocities (i.e. homogeneous regime). The gas bubbles, injected in the column through a sparger, contain one of the reactants, namely CO_2, that via mass transfer moves to the continuous liquid phase, where it reacts with NaOH. A key role is played by the bubble size distribution (BSD) and the specific surface area that define the overall mass transfer rate in the CFD model. In order to correctly predict the BSD and the polydispersity of the bubbly system the population balance equation is solved by the quadrature method of moments (QMOM), within the OpenFOAM (v. 2.2.x) two-fluid solver compressibleTwoPhaseEulerFoam. To reduce the computational time and increase stability, a second-order operator-splitting technique for the solution of the chemically reactive species is also implemented, allowing to solve the different processes involved with their own time-scale. To our knowledge this is the first time that QMOM is employed for the simulation of a real reactive bubbly system and predictions are validated against experiments.
机译:在这项工作中,我们使用计算流体力学(CFD)来模拟在矩形气泡塔中以低表观速度(即均质状态)运行的反应性气-液气泡系统。通过喷雾器注入到塔中的气泡包含一种反应物,即CO_2,它们通过传质转移到连续液相,并在其中与NaOH反应。气泡大小分布(BSD)和比表面积(在CFD模型中定义了整体传质速率)起着关键作用。为了正确预测气泡系统的BSD和多分散性,在OpenFOAM(v。2.2.x)双流体求解器compressibleTwoPhaseEulerFoam中,通过矩量正交方法(QMOM)求解了种群平衡方程。为了减少计算时间并提高稳定性,还采用了用于化学反应性物质溶液的二阶算子分解技术,从而可以解决涉及其自身时标的不同过程。据我们所知,这是首次将QMOM用于真实的反应性起泡系统的仿真,并且根据实验对预测进行了验证。

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