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Hydrodynamics and gas transfer performance of confined hollow fibre membrane modules with the aid of computational fluid dynamics

机译:借助计算流体力学,研究了中空纤维膜组件的流体力学和气体传递性能

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摘要

The use of gas permeable membranes for bubbleless aeration is of increasing interest due to the energy savings it affords in wastewater treatment applications. However, flow maldistributions are a major factor in the impedance of mass transfer efficiency. In this study, the effect of module configuration on the hydrodynamic conditions and gas transfer properties of various submerged hollow fibre bundles was investigated. Flow patterns and velocity profiles within fibre bundles were predicted numerically using computational fluid dynamics (CFD) and the model was validated by tracer-response experiments. In addition, the effect of fibre spacing and bundle size on the aeration rate of various modules was evaluated experimentally. Previous studies typically base performance evaluations on the liquid inlet velocity or an average velocity, an approach which neglects the effect of geometric features within modules. The use of validated CFD simulations provides more detailed information for performance assessment. It was shown that specific oxygen transfer rates declines significantly with increasing numbers of fibres in a bundle. However, the same trend was not observed when the fibre spacing is increased. A correlation was proposed for the prediction of the overall mass transfer coefficient utilizing the local velocity values obtained from the validated CFD model.
机译:气体渗透膜用于无气泡曝气的兴趣日益增加,这是因为它可在废水处理应用中节省能源。但是,流量分布不均是影响传质效率的主要因素。在这项研究中,研究了模块构型对各种浸没中空纤维束的水力条件和气体传递特性的影响。使用计算流体动力学(CFD)对纤维束内的流动模式和速度分布进行了数值预测,并通过示踪剂响应实验对模型进行了验证。此外,实验评估了纤维间距和束尺寸对各种组件通气率的影响。先前的研究通常基于液体入口速度或平均速度进行性能评估,而这种方法忽略了模块内几何特征的影响。经过验证的CFD仿真的使用为性能评估提供了更详细的信息。结果表明,随着束中纤维数量的增加,特定的氧气传输速率显着下降。但是,当纤维间距增加时,未观察到相同的趋势。建议使用从验证的CFD模型获得的局部速度值来预测整体传质系数。

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