The aim of this study is to investigate the use of computational fluid dynamics (CFD) to predict the solid separation efficiency of a hydrodynamic separator. The numerical difficulty concerns the discretization of the geometry to simulate both the global behavior and the local phenomena that occur near the screen. In this context, a CFD multiscale approach was used: a global model (at the scale of the device) is used to observe the hydrodynamic behavior within the device; a local model (portion of the screen) is used to determine the local phenomena that occur near the screen. The Eulerian–Lagrangian approach was used to model the particle trajectories in both models. The global model shows the influence of the particles' characteristics on the trapping efficiency. A high density favors the sedimentation. In contrast, particles with small densities (1,040 kg/m3) are steered by the hydrodynamic behavior and can potentially be trapped by the separator. The use of the local model allows us to observe the particle trajectories near the screen. A comparison between two types of screens (perforated plate vs expanded metal) highlights the turbulent effects created by the shape of the screen.
Skip Nav Destination
Article navigation
Research Article|
January 17 2014
Separation efficiency of a hydrodynamic separator using a 3D computational fluid dynamics multiscale approach Available to Purchase
Vivien Schmitt;
1National School for Water and Environmental Engineering of Strasbourg (ENGEES), ICube (University of Strasbourg, CNRS, INSA of Strasbourg, ENGEES), Mechanics Department, Fluid Mechanics Team, ENGEES, 1 quai Koch, BP 61039, 67070 Strasbourg cedex, France
E-mail: [email protected]
Search for other works by this author on:
Matthieu Dufresne;
Matthieu Dufresne
1National School for Water and Environmental Engineering of Strasbourg (ENGEES), ICube (University of Strasbourg, CNRS, INSA of Strasbourg, ENGEES), Mechanics Department, Fluid Mechanics Team, ENGEES, 1 quai Koch, BP 61039, 67070 Strasbourg cedex, France
Search for other works by this author on:
Jose Vazquez;
Jose Vazquez
1National School for Water and Environmental Engineering of Strasbourg (ENGEES), ICube (University of Strasbourg, CNRS, INSA of Strasbourg, ENGEES), Mechanics Department, Fluid Mechanics Team, ENGEES, 1 quai Koch, BP 61039, 67070 Strasbourg cedex, France
Search for other works by this author on:
Martin Fischer;
Martin Fischer
1National School for Water and Environmental Engineering of Strasbourg (ENGEES), ICube (University of Strasbourg, CNRS, INSA of Strasbourg, ENGEES), Mechanics Department, Fluid Mechanics Team, ENGEES, 1 quai Koch, BP 61039, 67070 Strasbourg cedex, France
Search for other works by this author on:
Antoine Morin
Antoine Morin
2Hydroconcept, ZA Trappes Elancourt, 46 avenue des frères Lumière, 78190 Trappes, France
Search for other works by this author on:
Water Sci Technol (2014) 69 (5): 1067–1073.
Article history
Received:
July 24 2013
Accepted:
January 03 2014
Citation
Vivien Schmitt, Matthieu Dufresne, Jose Vazquez, Martin Fischer, Antoine Morin; Separation efficiency of a hydrodynamic separator using a 3D computational fluid dynamics multiscale approach. Water Sci Technol 1 March 2014; 69 (5): 1067–1073. doi: https://doi.org/10.2166/wst.2014.014
Download citation file:
Sign in
Don't already have an account? Register
Client Account
You could not be signed in. Please check your email address / username and password and try again.
Could not validate captcha. Please try again.
eBook
Pay-Per-View Access
$38.00