Numerical simulation of a mechanical flocculation process with multi-chambers in series

Author:

Zong Jie12,Yuan Fang3,Zhan Minshu45,Xu Wei3,Cheng Guojian5,Yu Aibing14

Affiliation:

1. a School of Energy and Environment, Southeast University, Nanjing 210042, China

2. b Southeast University – Monash University Joint Graduate School, Suzhou 215123, China

3. c General Water of China Co., Ltd, Beijing 100022, China

4. d ARC Research Hub for Computational Particle Technology, Department of Chemical and Biological Engineering, Monash University, Clayton, Melbourne, VIC 3800, Australia

5. e JITRI Institute for Process Modeling and Optimization, Suzhou 215123, China

Abstract

Abstract A mechanical flocculation system with multi-chambers in series is commonly used as the advanced phosphorus removal technology for wastewater treatment. This work aims to numerically investigate the inner states and overall performance of industrial-scale mechanical flocculators in series. This is based on our previously developed computational fluid dynamics (CFD) flocculation model which is extended to consider the key chemical reactions of phosphorus removal. The effects of the number of flocculation chambers, locations, and sizes of the flocculation chamber connection as well as operational combinations of impeller speeds are investigated. With a decreasing number of flocculation chambers, the main vortexes and chemical reactions are weakened, while the small flocs form. Both the phosphorus removal efficiency η and the average floc size dp reduce as the number of flocculation chambers decreases. The connection location of flocculation chambers directly determines the turbulent flow, thus influencing the key performance indicators. However, the phosphorus removal efficiency η and average particle size dp are little affected by the size of the flocculation chamber connection. As the impeller speeds in series gradually increase, the gradient of floc size distribution in each chamber is enlarged and the chemical reaction is enhanced over the working volume.

Funder

Important Projects in the Scientific Innovation of CECEP

Publisher

IWA Publishing

Subject

Water Science and Technology,Environmental Engineering

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