Literature DB >> 34566251

Lagrangian Method to Model Advection-Dispersion-Reaction Transport in Drinking Water Pipe Networks.

Feng Shang1, Hyoungmin Woo2, Jonathan B Burkhardt1, Regan Murray1.   

Abstract

A Lagrangian method to simulate the advection, dispersion, and reaction of a single chemical, biological, or physical constituent within drinking water pipe networks is presented. This Lagrangian approach removes the need for fixed computational grids typically required in Eulerian and Eulerian-Lagrangian methods and allows for nonuniform computational segments. This makes the method fully compatible with the advection-reaction water quality engine currently used in EPANET. An operator splitting approach is used, in which the advection-reaction process is modeled before the dispersion process for each water quality step. The dispersion equation is discretized using a segment-centered finite-difference scheme, and flux continuity boundary conditions are applied at network junctions. A staged approach is implemented to solve the dispersion equation for interconnected pipe networks. First, a linear relationship between the boundary and internal concentrations is established for every pipe. Second, a symmetric and positive definite linear system of equations is constructed to calculate the concentrations at network junctions. Last, pipe internal concentrations are updated based on the junction concentrations. The solution generates exact results when the analytical solutions are available and leads to more accurate water quality simulations than advection-reaction-only water quality models, especially in the areas where dispersion dominates advection.

Entities:  

Year:  2021        PMID: 34566251      PMCID: PMC8459673          DOI: 10.1061/(asce)wr.1943-5452.0001421

Source DB:  PubMed          Journal:  J Water Resour Plan Manag        ISSN: 0733-9496            Impact factor:   3.457


  2 in total

1.  Framework for Modeling Lead in Premise Plumbing Systems Using EPANET.

Authors:  Jonathan B Burkhardt; Hyoungmin Woo; James Mason; Feng Shang; Simoni Triantafyllidou; Michael R Schock; Darren Lytle; Regan Murray
Journal:  J Water Resour Plan Manag       Date:  2020-12-01       Impact factor: 3.054

2.  Water quality modeling in the dead end sections of drinking water distribution networks.

Authors:  Ahmed A Abokifa; Y Jeffrey Yang; Cynthia S Lo; Pratim Biswas
Journal:  Water Res       Date:  2015-11-18       Impact factor: 11.236

  2 in total

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