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Towards advanced aeration modelling: from blower to bubbles to bulk

机译:走向高级曝气建模:从鼓风机到泡沫散装

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Aeration is an essential component of aerobic biological wastewater treatment and is the largest energy consumer at most water resource recovery facilities. Most modelling studies neglect the inherent complexity of the aeration systems used. Typically, the blowers, air piping, and diffusers are not modelled in detail, completely mixed reactors in a series are used to represent plug-flow reactors, and empirical correlations are used to describe the impact of operating conditions on bubble formation and transport, and oxygen transfer from the bubbles to the bulk liquid. However, the mechanisms involved are very complex in nature and require significant research efforts. This contribution highlights why and where there is a need for more detail in the different aspects of the aeration system and compiles recent efforts to develop physical models of the entire aeration system (blower, valves, air piping and diffusers), as well as adding rigour to the oxygen transfer efficiency modelling (impact of viscosity, bubble size distribution, shear and hydrodynamics). As a result of these model extensions, more realistic predictions of dissolved oxygen profiles and energy consumption have been achieved. Finally, the current needs for further model development are highlighted.
机译:曝气是有氧生物废水处理的重要组成部分,是大多数水资源回收设施中最大的能源消费。大多数建模研究忽略了所使用的曝气系统的固有复杂性。通常,鼓风机,空气管道和扩散器未详细建模,串联中的完全混合反应器用于表示塞流反应器,并且使用经验相关性来描述操作条件对泡沫形成和运输的影响,以及氧从气泡转移到散装液体。然而,所涉及的机制本质上非常复杂,需要重大的研究努力。这种贡献突出了为什么在曝气系统的不同方面有需要,并且在曝气系统的不同方面具有更多细节,并且近来努力开发整个曝气系统的物理模型(鼓风机,阀门,空气管道和漫射器),以及加入RIGOR氧气转移效率建模(粘度的影响,泡尺寸分布,剪切和流体动力学)。由于这些模型延伸,已经实现了对溶解的氧气谱和能量消耗的更现实的预测。最后,突出了当前对进一步模型开发的需求。

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