Department of Environmental Science and Engineering, University of Shanghai for Science and Technology, 200093, Shanghai, People's Republic of China.
Environ Sci Pollut Res Int. 2024 Feb;31(7):11164-11177. doi: 10.1007/s11356-024-31909-x. Epub 2024 Jan 13.
Disinfection is an important step in deep drinking water treatment technology. This study applies computational fluid dynamics to investigate and optimize the hydrodynamics inside the ozone contactor. ANSYS Fluent was used to solve all the control equations. A step method is used to simulate the residence time distribution. The mean residence time is simulated under the Eulerian framework. The deflectors are installed in chambers to direct flow. The deflectors allow for a more uniform flow and a longer mean residence time within the contactor. The baffling factor showed that the deflectors could reduce the short-circuit effect in the contactor and improve the disinfection efficiency by 34.6% compared to the original reactor. The Morrill factor coefficient is improved by 22.8% compared to the original reactor. According to the Aral-Demirel index, contactors with deflectors are significantly better than other baffle-type contactors. The presence of the deflectors increased the microbial inactivation efficiency from 95.3 to 96.5%. The optimal deflector height should be controlled between 30 and 60 mm.
消毒是深度饮用水处理技术的重要步骤。本研究应用计算流体力学来研究和优化臭氧接触器内的流体动力学。使用 ANSYS Fluent 求解所有控制方程。采用阶跃法模拟停留时间分布。在欧拉框架下模拟平均停留时间。在腔室内安装挡板以引导流动。挡板可实现更均匀的流动和更长的接触器内平均停留时间。挡板系数表明,与原始反应器相比,挡板可减少接触器中的短路效应,并将消毒效率提高 34.6%。与原始反应器相比,Morrill 系数提高了 22.8%。根据阿拉尔-德米尔指数,带有挡板的接触器明显优于其他挡板式接触器。挡板的存在将微生物失活效率从 95.3%提高到 96.5%。最佳挡板高度应控制在 30 至 60 毫米之间。