Examining a Coupled Continuum Pipe-Flow Model for Groundwater Flow and Solute Transport in a Karst aquifer
A coupled continuum pipe-flow (CCPF) model has been developed for groundwater flow and solute transport in a karst aquifer withconduits. Groundwater flow in conduits is simulated througha pipe flow model and flow in fissured matrix rock is described by Darcy’s law. Water mass exchange between the...
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| Published in | Acta carsologica Vol. 39; no. 2 |
|---|---|
| Main Author | |
| Format | Journal Article |
| Language | English |
| Published |
Slovenian Academy of Sciences and Arts
01.06.2010
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| Online Access | Get full text |
| ISSN | 0583-6050 1580-2612 1580-2612 |
| DOI | 10.3986/ac.v39i2.104 |
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| Abstract | A coupled continuum pipe-flow (CCPF) model has been developed for groundwater flow and solute transport in a karst aquifer withconduits. Groundwater flow in conduits is simulated througha pipe flow model and flow in fissured matrix rock is described by Darcy’s law. Water mass exchange between the two domains is modeled by a first-order exchange rate method. In this study, we investigate mathematical well-posedness (mathematical term, whichmeans solution existence and uniqueness) of the CCPF model, develop a finite elementary method to numerically approximate the mathematical model and study the convergence of the numerical method. The study results prove the modeling approachis mathematically well posed and numerically converged. To study the accuracy of the CCPF model, a recently developed Stokes-Darcy (SD) model and CCPF model are compared withlaboratory experimental results. It was found that the SD model simulations matchwell withexperimental results, but the CCPF model overestimates the hydraulic head in the matrix, especially around the matrix and conduit interface. The model underestimates solute transport in the conduit and does not capture the plume distribution in the matrix. In comparison withthe SD model, the CCPF model requires an additional parameter, the first-order mass exchange rate, and the parameter is normally obtained throughinverse method curve fitting. The SD method may provide an approachto directly estimate the parameter value. |
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| AbstractList | A coupled continuum pipe-flow (CCPF) model has been developed for groundwater flow and solute transport in a karst aquifer withconduits. Groundwater flow in conduits is simulated througha pipe flow model and flow in fissured matrix rock is described by Darcy’s law. Water mass exchange between the two domains is modeled by a first-order exchange rate method. In this study, we investigate mathematical well-posedness (mathematical term, whichmeans solution existence and uniqueness) of the CCPF model, develop a finite elementary method to numerically approximate the mathematical model and study the convergence of the numerical method. The study results prove the modeling approachis mathematically well posed and numerically converged. To study the accuracy of the CCPF model, a recently developed Stokes-Darcy (SD) model and CCPF model are compared withlaboratory experimental results. It was found that the SD model simulations matchwell withexperimental results, but the CCPF model overestimates the hydraulic head in the matrix, especially around the matrix and conduit interface. The model underestimates solute transport in the conduit and does not capture the plume distribution in the matrix. In comparison withthe SD model, the CCPF model requires an additional parameter, the first-order mass exchange rate, and the parameter is normally obtained throughinverse method curve fitting. The SD method may provide an approachto directly estimate the parameter value. |
| Author | Hu, Bill X. |
| Author_xml | – sequence: 1 givenname: Bill X. surname: Hu fullname: Hu, Bill X. |
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| CitedBy_id | crossref_primary_10_1016_j_jhydrol_2020_125937 crossref_primary_10_1061__ASCE_WR_1943_5452_0001603 crossref_primary_10_3390_w12113221 crossref_primary_10_1007_s12665_019_8324_y crossref_primary_10_1016_j_enganabound_2012_06_001 crossref_primary_10_3389_fmars_2023_1277005 |
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| Title | Examining a Coupled Continuum Pipe-Flow Model for Groundwater Flow and Solute Transport in a Karst aquifer |
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