Lima Neto Iran E, Parente Priscila A B
Departamento de Engenharia Hidráulica e Ambiental, Centro de Tecnologia, Universidade Federal do Ceará, Fortaleza, CE, Brazil.
An Acad Bras Cienc. 2016 Mar;88(1):411-22. doi: 10.1590/0001-3765201520140453. Epub 2016 Feb 2.
This paper presents an integral model to evaluate the impact of gas transfer on the hydrodynamics of bubble plumes. The model is based on the Gaussian type self-similarity and functional relationships for the entrainment coefficient and factor of momentum amplification due to turbulence. The impact of mass transfer on bubble plume hydrodynamics is investigated considering different bubble sizes, gas flow rates and water depths. The results revealed a relevant impact when fine bubbles are considered, even for moderate water depths. Additionally, model simulations indicate that for weak bubble plumes (i.e., with relatively low flow rates and large depths and slip velocities), both dissolution and turbulence can affect plume hydrodynamics, which demonstrates the importance of taking the momentum amplification factor relationship into account. For deeper water conditions, simulations of bubble dissolution/decompression using the present model and classical models available in the literature resulted in a very good agreement for both aeration and oxygenation processes. Sensitivity analysis showed that the water depth, followed by the bubble size and the flow rate are the most important parameters that affect plume hydrodynamics. Lastly, dimensionless correlations are proposed to assess the impact of mass transfer on plume hydrodynamics, including both the aeration and oxygenation modes.
本文提出了一个积分模型,用于评估气体传递对气泡羽流流体动力学的影响。该模型基于高斯型自相似性以及夹带系数和湍流引起的动量放大因子的函数关系。考虑到不同的气泡尺寸、气体流速和水深,研究了传质对气泡羽流流体动力学的影响。结果表明,即使在中等水深条件下,考虑细气泡时也会产生显著影响。此外,模型模拟表明,对于弱气泡羽流(即流速相对较低、深度较大且滑移速度较大的情况),溶解和湍流都会影响羽流流体动力学,这表明考虑动量放大因子关系的重要性。对于更深的水条件,使用本文模型和文献中现有的经典模型对气泡溶解/减压进行模拟,在曝气和充氧过程中都得到了很好的一致性。敏感性分析表明,水深是影响羽流流体动力学的最重要参数,其次是气泡尺寸和流速。最后,提出了无量纲关联式,以评估传质对羽流流体动力学的影响,包括曝气和充氧模式。