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PMID: 26248321 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

iCFD: Interpreted Computational Fluid Dynamics - Degeneration of CFD to one-dimensional advection-dispersion models using statistical experimental design - The secondary clarifier.

Water research ·Vol. 83 ·2015-10-15 ·页码 396-411

Guyonvarch E, Ramin E, Kulahci M, Plósz BG

Abstract

The present study aims at using statistically designed computational fluid dynamics (CFD) simulations as numerical experiments for the identification of one-dimensional (1-D) advection-dispersion models - computationally light tools, used e.g., as sub-models in systems analysis. The objective is to develop a new 1-D framework, referred to as interpreted CFD (iCFD) models, in which statistical meta-models are used to calculate the pseudo-dispersion coefficient (D) as a function of design and flow boundary conditions. The method - presented in a straightforward and transparent way - is illustrated using the example of a circular secondary settling tank (SST). First, the significant design and flow factors are screened out by applying the statistical method of two-level fractional factorial design of experiments. Second, based on the number of significant factors identified through the factor screening study and system understanding, 50 different sets of design and flow conditions are selected using Latin Hypercube Sampling (LHS). The boundary condition sets are imposed on a 2-D axi-symmetrical CFD simulation model of the SST. In the framework, to degenerate the 2-D model structure, CFD model outputs are approximated by the 1-D model through the calibration of three different model structures for D. Correlation equations for the D parameter then are identified as a function of the selected design and flow boundary conditions (meta-models), and their accuracy is evaluated against D values estimated in each numerical experiment. The evaluation and validation of the iCFD model structure is carried out using scenario simulation results obtained with parameters sampled from the corners of the LHS experimental region. For the studied SST, additional iCFD model development was carried out in terms of (i) assessing different density current sub-models; (ii) implementation of a combined flocculation, hindered, transient and compression settling velocity function; and (iii) assessment of modelling the onset of transient and compression settling. Furthermore, the optimal level of model discretization both in 2-D and 1-D was undertaken. Results suggest that the iCFD model developed for the SST through the proposed methodology is able to predict solid distribution with high accuracy - taking a reasonable computational effort - when compared to multi-dimensional numerical experiments, under a wide range of flow and design conditions. iCFD tools could play a crucial role in reliably predicting systems' performance under normal and shock events.

Keywords
Computational Fluid Dynamics (CFD) Degeneration of model structural complexity Interpreted CFD model (iCFD) One-dimensional advection dispersion model Secondary settling tank Statistical factor screening
MeSH 主题词
Hydrodynamics Hydrogen-Ion Concentration Iron/analysis Metal Nanoparticles/chemistry Metals, Heavy/analysis Models, Theoretical Oxygen/analysis Time Factors Waste Disposal, Fluid/instrumentation,methods Water Pollutants, Chemical/analysis Water Purification/instrumentation,methods
化学物质
Metals, Heavy Water Pollutants, Chemical Iron Oxygen
作者与单位
共 4 位作者,点击展开单位 / ORCID
Guyonvarch Estelle
Department of Environmental Engineering, Technical University of Denmark, Miljøvej, Building 113, 2800 Kgs. Lyngby, Denmark.
Ramin Elham
Department of Environmental Engineering, Technical University of Denmark, Miljøvej, Building 113, 2800 Kgs. Lyngby, Denmark.
Kulahci Murat
Department of Applied Mathematics and Computer Science, Technical University of Denmark, Richard Petersens Plads, Building 321, 2800 Kgs. Lyngby, Denmark; Department of Business Administration, Technology and Social Sciences, Luleå University of Technology, SE-97187 Luleå, Sweden.
Plósz Benedek Gy
Department of Environmental Engineering, Technical University of Denmark, Miljøvej, Building 113, 2800 Kgs. Lyngby, Denmark. Electronic address: [email protected].
Article Info
Journal
Water research
Abbr.
Water Res
ISSN
1879-2448
Corresponding email
Published
2015-10-15
电子出版
2015-00-18
页码
396-411
Language
English
Country/Region
England
NLM ID
0105072
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