转盘式陶瓷膜曝气工艺用于水产养殖废水净化的研究

IF 4.3 2区 农林科学 Q2 AGRICULTURAL ENGINEERING
Jun Zhang , Jingjing Yao , Guofeng Cheng , Fang Wang , Shouqi Cao , Xingguo Liu , Qinsong Hu
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引用次数: 0

摘要

为了提高旋转陶瓷膜曝气过程中颗粒的分离效率,本研究采用欧拉双流体模型和种群平衡模型(PBM)对曝气装置反应区内气液两相流动进行了数值模拟。通过对不同监测平面上气泡直径的比较,验证了数值计算模型的准确性。研究了不同曝气率、气泡直径和陶瓷膜转速对两相流场特性的影响。结果表明:随着曝气率的增加,在曝气池顶部,水流速度和湍流耗散率相对较低,有利于提高浮选效率。当曝气量达到10 m3/h时,速度和湍流耗散率显著降低。气泡直径为20 μm时,曝气池内速度不均匀性指数最低。当气泡直径增大到100 μm时,陶瓷盘附近的水流速度和湍流耗散率最小。随着陶瓷膜转速从30 r/min增加到60 r/min,流场速度和湍流耗散率逐渐减小,而陶瓷膜附近气体含量显著增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of aeration process in rotating disk ceramic membranes for aquaculture wastewater purification
To enhance the separation efficiency of particles in the rotating ceramic membrane aeration process, this study employs the Eulerian two-fluid model and the Population Balance Model (PBM) to numerically simulate the gas-liquid two-phase flow within the reaction zone of the aeration device. The accuracy of the numerical calculation model is validated by comparing bubble diameters at different monitoring planes. The study investigates the impacts of different aeration rates, bubble diameters, and ceramic membrane rotational speeds on the characteristics of the two-phase flow field. The results are as follows: As the aeration rate increases, in the top part of the aeration tank, the water flow velocity and turbulence dissipation rate are relatively low, which is conducive to improving the flotation efficiency. When the aeration rate reaches 10 m3/h, the velocity and turbulent dissipation rate decreased significantly. When the bubble diameter is 20 μm, the velocity non-uniformity index inside the aeration tank is the lowest. When the bubble diameter increases to 100 μm, the water flow velocity and turbulence dissipation rate near the ceramic disc are at their minimum. As the rotational speed of the ceramic membrane increases from 30 r/min to 60 r/min, the flow field velocity and turbulence dissipation rate gradually decrease, while the gas content near the ceramic membrane increases significantly.
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来源期刊
Aquacultural Engineering
Aquacultural Engineering 农林科学-农业工程
CiteScore
8.60
自引率
10.00%
发文量
63
审稿时长
>24 weeks
期刊介绍: Aquacultural Engineering is concerned with the design and development of effective aquacultural systems for marine and freshwater facilities. The journal aims to apply the knowledge gained from basic research which potentially can be translated into commercial operations. Problems of scale-up and application of research data involve many parameters, both physical and biological, making it difficult to anticipate the interaction between the unit processes and the cultured animals. Aquacultural Engineering aims to develop this bioengineering interface for aquaculture and welcomes contributions in the following areas: – Engineering and design of aquaculture facilities – Engineering-based research studies – Construction experience and techniques – In-service experience, commissioning, operation – Materials selection and their uses – Quantification of biological data and constraints
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