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Erschienen in: Hydrogeology Journal 6/2017

03.04.2017 | Report

Elements of complexity in subsurface modeling, exemplified with three case studies

verfasst von: Vicky L. Freedman, Michael J. Truex, Mark L. Rockhold, Diana H. Bacon, Mark D. Freshley, Dawn M. Wellman

Erschienen in: Hydrogeology Journal | Ausgabe 6/2017

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Abstract

There are complexity elements to consider when applying subsurface flow and transport models to support environmental analyses. Modelers balance the benefits and costs of modeling along the spectrum of complexity, taking into account the attributes of more simple models (e.g., lower cost, faster execution, easier to explain, less mechanistic) and the attributes of more complex models (higher cost, slower execution, harder to explain, more mechanistic and technically defensible). In this report, modeling complexity is examined with respect to considering this balance. The discussion of modeling complexity is organized into three primary elements: (1) modeling approach, (2) description of process, and (3) description of heterogeneity. Three examples are used to examine these complexity elements. Two of the examples use simulations generated from a complex model to develop simpler models for efficient use in model applications. The first example is designed to support performance evaluation of soil-vapor-extraction remediation in terms of groundwater protection. The second example investigates the importance of simulating different categories of geochemical reactions for carbon sequestration and selecting appropriate simplifications for use in evaluating sequestration scenarios. In the third example, the modeling history for a uranium-contaminated site demonstrates that conservative parameter estimates were inadequate surrogates for complex, critical processes and there is discussion on the selection of more appropriate model complexity for this application. All three examples highlight how complexity considerations are essential to create scientifically defensible models that achieve a balance between model simplification and complexity.

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Literatur
Zurück zum Zitat ANL (1993) Manual for implementing residual radioactive materials guidelines using RESRAD, version 5.0. ANL/EAD/LD-2, Environmental Assessment Division, Argonne National Laboratory, Argonne, IL ANL (1993) Manual for implementing residual radioactive materials guidelines using RESRAD, version 5.0. ANL/EAD/LD-2, Environmental Assessment Division, Argonne National Laboratory, Argonne, IL
Zurück zum Zitat Beck PH, Mann B (2012) Fate and transport modeling for monitored natural attenuation projects: what should be considered to maximize the value in decision making? In: Oswald SE, Kolditz O, Attinger S (eds) Models: repositories of knowledge. IAHS Publication, vol. 35, IAHS, Wallingford, UK, pp 149–156 Beck PH, Mann B (2012) Fate and transport modeling for monitored natural attenuation projects: what should be considered to maximize the value in decision making? In: Oswald SE, Kolditz O, Attinger S (eds) Models: repositories of knowledge. IAHS Publication, vol. 35, IAHS, Wallingford, UK, pp 149–156
Zurück zum Zitat Bethke CM, Brady PV (2000) How the Kd approach undermines cleanup ground water cleanup. Ground Water 38(3):435–443CrossRef Bethke CM, Brady PV (2000) How the Kd approach undermines cleanup ground water cleanup. Ground Water 38(3):435–443CrossRef
Zurück zum Zitat Beven KJ (1993) Prophecy, reality and uncertainty in distributed hydrological modelling. Adv Water Resour 16:41–51CrossRef Beven KJ (1993) Prophecy, reality and uncertainty in distributed hydrological modelling. Adv Water Resour 16:41–51CrossRef
Zurück zum Zitat Beven KJ, Freer L (2001) Equifinality, data assimilation, and uncertainty estimation in mechanistic modelling of complex environmental systems using the GLUE methodology. J Hydrol 249:11–29CrossRef Beven KJ, Freer L (2001) Equifinality, data assimilation, and uncertainty estimation in mechanistic modelling of complex environmental systems using the GLUE methodology. J Hydrol 249:11–29CrossRef
Zurück zum Zitat Bhattacharjee S, Ryan JN, Elimelech M (2002) Virus transport in physically and geochemically heterogeneous subsurface porous media. J Contam Hydrol 57:161–187CrossRef Bhattacharjee S, Ryan JN, Elimelech M (2002) Virus transport in physically and geochemically heterogeneous subsurface porous media. J Contam Hydrol 57:161–187CrossRef
Zurück zum Zitat BHI (2002) Protection of 300 area groundwater from uranium-contaminated soils at remediation sites. BHI-01667, Rev. 0, Bechtel Hanford, Richland, WA BHI (2002) Protection of 300 area groundwater from uranium-contaminated soils at remediation sites. BHI-01667, Rev. 0, Bechtel Hanford, Richland, WA
Zurück zum Zitat Blouin M, Martel R, Gloaguen E (2013) Accounting for aquifer heterogeneity from geological data to management tools. Ground Water 51:421–431 Blouin M, Martel R, Gloaguen E (2013) Accounting for aquifer heterogeneity from geological data to management tools. Ground Water 51:421–431
Zurück zum Zitat Bower KM, Gable CW, Zyvoloski GA (2005) Grid resolution study of ground water flow and transport. Ground Water 43(1):122–132CrossRef Bower KM, Gable CW, Zyvoloski GA (2005) Grid resolution study of ground water flow and transport. Ground Water 43(1):122–132CrossRef
Zurück zum Zitat Bunn AL, Wellman DM, Deeb RA, Hawley EL, Truex MJ, Peterson M, Freshley MD, Pierce EM, McCord J, Young MH, Gilmore TJ, Miller R, Miracle AL, Kaback D, Eddy-Dilek C, Rossabi J, Lee MH, Bush RP, Beam P, Chamberlain GM, Marble J, Whitehurst L, Gerdes KD, Collazo Y (2012) Scientific opportunities for monitoring at environmental remediation sites (SOMERS): integrated systems-based approaches to monitoring. PNNL-21379, Pacific Northwest National Laboratory, Richland, WA Bunn AL, Wellman DM, Deeb RA, Hawley EL, Truex MJ, Peterson M, Freshley MD, Pierce EM, McCord J, Young MH, Gilmore TJ, Miller R, Miracle AL, Kaback D, Eddy-Dilek C, Rossabi J, Lee MH, Bush RP, Beam P, Chamberlain GM, Marble J, Whitehurst L, Gerdes KD, Collazo Y (2012) Scientific opportunities for monitoring at environmental remediation sites (SOMERS): integrated systems-based approaches to monitoring. PNNL-21379, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Burr DT, Sudicky EA, Naff RL (1994) Nonreactive and reactive solute transport in three-dimensional heterogeneous porous media: mean displacement, plume spreading and uncertainty. Water Resour Res 30:791–815CrossRef Burr DT, Sudicky EA, Naff RL (1994) Nonreactive and reactive solute transport in three-dimensional heterogeneous porous media: mean displacement, plume spreading and uncertainty. Water Resour Res 30:791–815CrossRef
Zurück zum Zitat Cantrell KJ, Brown CF (2014) Source term modeling for evaluating the potential impacts to groundwater of fluids escaping from a depleted oil reservoir used for carbon sequestration. Int J Greenhouse Gas Control 27:139–145. doi:10.1016/j.ijggc.2014.05.009 CrossRef Cantrell KJ, Brown CF (2014) Source term modeling for evaluating the potential impacts to groundwater of fluids escaping from a depleted oil reservoir used for carbon sequestration. Int J Greenhouse Gas Control 27:139–145. doi:10.​1016/​j.​ijggc.​2014.​05.​009 CrossRef
Zurück zum Zitat Carroll SA, Keating E, Mansoor K, Dai Z, Sun Y, Trainor-Guitton W, Brown C, Bacon D (2014) Key factors for determining groundwater impacts due to leakage from geologic carbon sequestration reservoirs. Int J Greenhouse Gas Control 29:153–168. doi:10.1016/j.ijggc.2014.07.007 CrossRef Carroll SA, Keating E, Mansoor K, Dai Z, Sun Y, Trainor-Guitton W, Brown C, Bacon D (2014) Key factors for determining groundwater impacts due to leakage from geologic carbon sequestration reservoirs. Int J Greenhouse Gas Control 29:153–168. doi:10.​1016/​j.​ijggc.​2014.​07.​007 CrossRef
Zurück zum Zitat Comunian A, De Micheli L, Lazzati C, Felletti F, Giacobbo F, Giudicii M, Bersezio R (2016) Hierarchical simulation of aquifer heterogeneity: implications of different simulation settings on solute-transport modeling. Hydrogeol J 24(2):319–334CrossRef Comunian A, De Micheli L, Lazzati C, Felletti F, Giacobbo F, Giudicii M, Bersezio R (2016) Hierarchical simulation of aquifer heterogeneity: implications of different simulation settings on solute-transport modeling. Hydrogeol J 24(2):319–334CrossRef
Zurück zum Zitat Doherty J (2011) Modeling: picture perfect or abstract art. Ground Water 49(4):455–456CrossRef Doherty J (2011) Modeling: picture perfect or abstract art. Ground Water 49(4):455–456CrossRef
Zurück zum Zitat Doherty JE, Hunt RJ (2010) Approaches to highly parameterized inversion: a guide to using PEST for groundwater-model calibration. US Geol Surv Sci Invest Rep 2010-5169 Doherty JE, Hunt RJ (2010) Approaches to highly parameterized inversion: a guide to using PEST for groundwater-model calibration. US Geol Surv Sci Invest Rep 2010-5169
Zurück zum Zitat Englehardt I, De Aguinaga JG, Mikat H, Schuth C, Liedl R (2014) Complexity vs. simplicity: groundwater model ranking using information criteria. Ground Water 52(4):573–583. doi:10.1111/gwat.12080 CrossRef Englehardt I, De Aguinaga JG, Mikat H, Schuth C, Liedl R (2014) Complexity vs. simplicity: groundwater model ranking using information criteria. Ground Water 52(4):573–583. doi:10.​1111/​gwat.​12080 CrossRef
Zurück zum Zitat EPA (1999) Use of monitored natural attenuation at superfund, RCRA corrective action, and underground storage tank sites. OSWER Directive 92000.4-17P, US EPA, Office of Solid Waste and Emergency Response, Washington, DC EPA (1999) Use of monitored natural attenuation at superfund, RCRA corrective action, and underground storage tank sites. OSWER Directive 92000.4-17P, US EPA, Office of Solid Waste and Emergency Response, Washington, DC
Zurück zum Zitat EPA (2011) Groundwater road map: recommended process for restoring contaminated groundwater at superfund sites. OSWER 9283.1-34, US EPA, Washington, DC EPA (2011) Groundwater road map: recommended process for restoring contaminated groundwater at superfund sites. OSWER 9283.1-34, US EPA, Washington, DC
Zurück zum Zitat EPA (2014) Groundwater remedy completion strategy. OSWER 9200.2-144, US EPA, Office of Solid Waste and Emergency Response, Washington, DC EPA (2014) Groundwater remedy completion strategy. OSWER 9200.2-144, US EPA, Office of Solid Waste and Emergency Response, Washington, DC
Zurück zum Zitat EPA (2015) Use of monitored natural attenuation for inorganic contaminants in groundwater at superfund sites. OSWER Directive 9283.1-36, US EPA, Office of Solid Waste and Emergency Response, Washington, DC EPA (2015) Use of monitored natural attenuation for inorganic contaminants in groundwater at superfund sites. OSWER Directive 9283.1-36, US EPA, Office of Solid Waste and Emergency Response, Washington, DC
Zurück zum Zitat Freedman VL, Chen X, Finsterle SA, Freshley MD, Gorton I, Gosink LJ, Keating E, Lansing C, Moeglein WAM, Murray CJ, Pau GSH, Porter EA, Purohit S, Rockhold ML, Schuchardt KL, Sivaramakrishnan C, Vesselinov VV, Waichler SR (2014) A high-performance workflow system for subsurface simulation. Environ Model Softw 55:176–189. doi:10.1016/j.envsoft.2014.01.030 CrossRef Freedman VL, Chen X, Finsterle SA, Freshley MD, Gorton I, Gosink LJ, Keating E, Lansing C, Moeglein WAM, Murray CJ, Pau GSH, Porter EA, Purohit S, Rockhold ML, Schuchardt KL, Sivaramakrishnan C, Vesselinov VV, Waichler SR (2014) A high-performance workflow system for subsurface simulation. Environ Model Softw 55:176–189. doi:10.​1016/​j.​envsoft.​2014.​01.​030 CrossRef
Zurück zum Zitat Gerber MS (1992) Past practices technical characterization study: 300 Area—Hanford Site. WHC- MR-0388, Westinghouse Hanford, Richland, WA Gerber MS (1992) Past practices technical characterization study: 300 Area—Hanford Site. WHC- MR-0388, Westinghouse Hanford, Richland, WA
Zurück zum Zitat Greskowiak J, Hay MB, Prommer H, Liu C, Post VEA, Ma R, Davis JA, Zheng C, Zachara JM (2011) Simulating adsorption of U(VI) under transient groundwater flow and hydrochemistry: physical versus chemical nonequilibrium models. Water Resour Res 47, W08501. doi:10.1029/2009WR008819 CrossRef Greskowiak J, Hay MB, Prommer H, Liu C, Post VEA, Ma R, Davis JA, Zheng C, Zachara JM (2011) Simulating adsorption of U(VI) under transient groundwater flow and hydrochemistry: physical versus chemical nonequilibrium models. Water Resour Res 47, W08501. doi:10.​1029/​2009WR008819 CrossRef
Zurück zum Zitat Guswa AJ, Freyberg DL (2002) On the need for a mass-transfer model to describe solute spreading in geologic environments with low-permeability lenses. Water Resour Res 38(8). doi:10.1029/2001WR000528 Guswa AJ, Freyberg DL (2002) On the need for a mass-transfer model to describe solute spreading in geologic environments with low-permeability lenses. Water Resour Res 38(8). doi:10.​1029/​2001WR000528
Zurück zum Zitat Hajime Y, Doughty C (2011) Investigation of gridding effects for numerical simulations of CO2 geologic sequestration. Int J Greenhouse Gas Control 5(4):975–985CrossRef Hajime Y, Doughty C (2011) Investigation of gridding effects for numerical simulations of CO2 geologic sequestration. Int J Greenhouse Gas Control 5(4):975–985CrossRef
Zurück zum Zitat Hammond GE, Lichtner PC (2010) Field-scale model for the natural attenuation of uranium at the Hanford 300 Area using high-performance computing. Water Resour Res 46(9), W09527. doi:10.1029/2009WR008819 CrossRef Hammond GE, Lichtner PC (2010) Field-scale model for the natural attenuation of uranium at the Hanford 300 Area using high-performance computing. Water Resour Res 46(9), W09527. doi:10.​1029/​2009WR008819 CrossRef
Zurück zum Zitat Horner C, Engelmann F, Nuetzmann G (2009) Model based verification and prognosis of acidification and sulphate releasing processes downstream of a former sewage field in Berlin (Germany). J Contam Hydrol 106(1–2):83–98CrossRef Horner C, Engelmann F, Nuetzmann G (2009) Model based verification and prognosis of acidification and sulphate releasing processes downstream of a former sewage field in Berlin (Germany). J Contam Hydrol 106(1–2):83–98CrossRef
Zurück zum Zitat Hunt RJ, Zheng C (1999) Debating complexity in modeling. EOS Trans Am Geophys Union 80(3):29CrossRef Hunt RJ, Zheng C (1999) Debating complexity in modeling. EOS Trans Am Geophys Union 80(3):29CrossRef
Zurück zum Zitat Huysmans M, Dassargues A (2009) Application of multiple-point geostatistics on modeling groundwater flow and transport in a cross-bedded aquifer (Belgium). Hydrogeol J 17:1901–1911. doi:10.1007/s10040-009-0495-2 CrossRef Huysmans M, Dassargues A (2009) Application of multiple-point geostatistics on modeling groundwater flow and transport in a cross-bedded aquifer (Belgium). Hydrogeol J 17:1901–1911. doi:10.​1007/​s10040-009-0495-2 CrossRef
Zurück zum Zitat Keating EH, Harp DH, Dai Z, Pawar RJ (2016) Reduced order models for assessing CO2 impacts in shallow unconfined aquifers. Int J Greenhouse Gas Control 46:187–196CrossRef Keating EH, Harp DH, Dai Z, Pawar RJ (2016) Reduced order models for assessing CO2 impacts in shallow unconfined aquifers. Int J Greenhouse Gas Control 46:187–196CrossRef
Zurück zum Zitat Krause MH, Benson SM (2015) Accurate determination of characteristic relative permeability curves. Adv Water Resour 83:376–388CrossRef Krause MH, Benson SM (2015) Accurate determination of characteristic relative permeability curves. Adv Water Resour 83:376–388CrossRef
Zurück zum Zitat Lindgren, RJ (2006) Diffuse-flow conceptualization and simulation of the Edwards Aquifer, San Antonio Region, Texas. US Geological Surv Sci Invest Rep 2006-5319, 48 pp Lindgren, RJ (2006) Diffuse-flow conceptualization and simulation of the Edwards Aquifer, San Antonio Region, Texas. US Geological Surv Sci Invest Rep 2006-5319, 48 pp
Zurück zum Zitat Liu C, Zachara JM, Qafoku OS, McKinley JP, Heald SM, Wang Z (2004) Dissolution of uranyl microprecipitates in subsurface sediments at Hanford Site, USA. Geochim Cosmochim Acta 68:4519–4537CrossRef Liu C, Zachara JM, Qafoku OS, McKinley JP, Heald SM, Wang Z (2004) Dissolution of uranyl microprecipitates in subsurface sediments at Hanford Site, USA. Geochim Cosmochim Acta 68:4519–4537CrossRef
Zurück zum Zitat Liu C, Zachara JM, Qafoku NP, Wang Z (2008) Scale-dependent desorption of uranium from contaminated subsurface sediments. Water Resour Res 44, W08413. doi:10.1029/2007WR006478 Liu C, Zachara JM, Qafoku NP, Wang Z (2008) Scale-dependent desorption of uranium from contaminated subsurface sediments. Water Resour Res 44, W08413. doi:10.​1029/​2007WR006478
Zurück zum Zitat Liu C, Shi S, Zachara JM (2009) Kinetics of uranium (VI) desorption from contaminated sediments: effect of geochemical conditions and model evaluation. Environ Sci Technol 43(17):6560–6566CrossRef Liu C, Shi S, Zachara JM (2009) Kinetics of uranium (VI) desorption from contaminated sediments: effect of geochemical conditions and model evaluation. Environ Sci Technol 43(17):6560–6566CrossRef
Zurück zum Zitat Ma R, Zheng C, Prommer H, Greskowiak J, Liu C, Zachara J, Rockhold M (2010) A field-scale reactive transport model for U(VI) migration influenced by coupled multirate mass transfer and surface complexation reactions. Water Resour Res 46, W05509. doi:10.1029/2009WR008168 CrossRef Ma R, Zheng C, Prommer H, Greskowiak J, Liu C, Zachara J, Rockhold M (2010) A field-scale reactive transport model for U(VI) migration influenced by coupled multirate mass transfer and surface complexation reactions. Water Resour Res 46, W05509. doi:10.​1029/​2009WR008168 CrossRef
Zurück zum Zitat Meyer PD, Ye M, Rockhold NL, Neuman SP, Cantrell KJ (2007) Combined estimation of hydrogeologic conceptual model, parameter, and scenario uncertainty with application to uranium transport at the Hanford Site 300 Area. NUREG/CR-6940, PNNL-16396, US Nuclear Regulatory Commission, Washington, DC Meyer PD, Ye M, Rockhold NL, Neuman SP, Cantrell KJ (2007) Combined estimation of hydrogeologic conceptual model, parameter, and scenario uncertainty with application to uranium transport at the Hanford Site 300 Area. NUREG/CR-6940, PNNL-16396, US Nuclear Regulatory Commission, Washington, DC
Zurück zum Zitat Murray CJ, Zachara JM, McKinley JP, Ward A, Bott Y-J, Draper K, Moore D (2012) Establishing a geochemical heterogeneity model for a contaminated vadose zone–aquifer system. J Contam Hydrol. doi:10.1016/j.jconhyd.2012.02.003 Murray CJ, Zachara JM, McKinley JP, Ward A, Bott Y-J, Draper K, Moore D (2012) Establishing a geochemical heterogeneity model for a contaminated vadose zone–aquifer system. J Contam Hydrol. doi:10.​1016/​j.​jconhyd.​2012.​02.​003
Zurück zum Zitat Neuman SP (2002) Accounting for conceptual model uncertainty via maximum likelihood Bayesian model averaging. In: Calibration and reliability in groundwater modelling: a few steps closer to reality. Proceeding of ModelCARE 2002. Prague, Czech Republic, June 2002. IAHS Publication 277, IAHS, Wallingford, UK Neuman SP (2002) Accounting for conceptual model uncertainty via maximum likelihood Bayesian model averaging. In: Calibration and reliability in groundwater modelling: a few steps closer to reality. Proceeding of ModelCARE 2002. Prague, Czech Republic, June 2002. IAHS Publication 277, IAHS, Wallingford, UK
Zurück zum Zitat Neuman SP, Wierenga PJ (2003) A comprehensive strategy of hydrogeologic modeling and uncertainty analysis for nuclear facilities and sites. NUREGICR-6805, US Nuclear Regulatory Commission, Washington, DC Neuman SP, Wierenga PJ (2003) A comprehensive strategy of hydrogeologic modeling and uncertainty analysis for nuclear facilities and sites. NUREGICR-6805, US Nuclear Regulatory Commission, Washington, DC
Zurück zum Zitat Newell DL, Kaszuba JP, Viswanathan HS (2008) Significance of carbonate buffers in natural waters reacting with supercritical CO2: implications for monitoring, measuring and verification (MMV) of geologic carbon sequestration. Geophys Res Lett 35(23), L23403CrossRef Newell DL, Kaszuba JP, Viswanathan HS (2008) Significance of carbonate buffers in natural waters reacting with supercritical CO2: implications for monitoring, measuring and verification (MMV) of geologic carbon sequestration. Geophys Res Lett 35(23), L23403CrossRef
Zurück zum Zitat NRC (2012) Nuclear regulatory commission’s F-Tank farm technical evaluation report’s recommendations: Department of Energy’s activity summary matrix. SRR-CWDA-2012-00045, Rev. 1, Savannah River Remediation LLC Closure and Waste Disposal Authority, Aiken, SC NRC (2012) Nuclear regulatory commission’s F-Tank farm technical evaluation report’s recommendations: Department of Energy’s activity summary matrix. SRR-CWDA-2012-00045, Rev. 1, Savannah River Remediation LLC Closure and Waste Disposal Authority, Aiken, SC
Zurück zum Zitat Oostrom M, Rockhold ML, Thorne PD, Last GV, Truex MJ, Rohay VJ (2007) Carbon tetrachloride flow and transport in the subsurface of the 216-Z-9 trench at the Hanford Site: multifluid flow modeling and conceptual model update. Vadose Zone J 6(4):971–984CrossRef Oostrom M, Rockhold ML, Thorne PD, Last GV, Truex MJ, Rohay VJ (2007) Carbon tetrachloride flow and transport in the subsurface of the 216-Z-9 trench at the Hanford Site: multifluid flow modeling and conceptual model update. Vadose Zone J 6(4):971–984CrossRef
Zurück zum Zitat Oostrom M, Wietsma TW, Dane JH, Truex MJ, Ward AL (2009) Desiccation of unsaturated porous media: intermediate-scale experiments and numerical simulation. Vadose Zone J 8:643–650CrossRef Oostrom M, Wietsma TW, Dane JH, Truex MJ, Ward AL (2009) Desiccation of unsaturated porous media: intermediate-scale experiments and numerical simulation. Vadose Zone J 8:643–650CrossRef
Zurück zum Zitat Oostrom M, Wietsma TW, Strickland CE, Freedman VL, Truex MJ (2012) Sensor and numerical simulator evaluation for porous medium desiccation and rewetting at the intermediate laboratory scale. Vadose Zone J 11(1), 0089. doi:10.2136/vzj2011.0089 CrossRef Oostrom M, Wietsma TW, Strickland CE, Freedman VL, Truex MJ (2012) Sensor and numerical simulator evaluation for porous medium desiccation and rewetting at the intermediate laboratory scale. Vadose Zone J 11(1), 0089. doi:10.​2136/​vzj2011.​0089 CrossRef
Zurück zum Zitat Oostrom M, Truex MJ, Rice AK, Johnson CD, Carroll KC, Becker DJ, Simon MA (2014) Estimating the impact of vadose zone sources on groundwater to support performance assessment of soil vapor extraction. Ground Water Monit Remidiat 34(2):71–84. doi:10.1111/gwmr.12050 Oostrom M, Truex MJ, Rice AK, Johnson CD, Carroll KC, Becker DJ, Simon MA (2014) Estimating the impact of vadose zone sources on groundwater to support performance assessment of soil vapor extraction. Ground Water Monit Remidiat 34(2):71–84. doi:10.​1111/​gwmr.​12050
Zurück zum Zitat Pachepsky YA, Guber AK, Van Genuchten MT, Nicholson TJ, Cady RE, Simunek J, Schaap MG (2006) Model abstraction techniques for soil-water flow and transport. NUREG/CR-6884, US Nuclear Regulatory Commission, Washington, DC Pachepsky YA, Guber AK, Van Genuchten MT, Nicholson TJ, Cady RE, Simunek J, Schaap MG (2006) Model abstraction techniques for soil-water flow and transport. NUREG/CR-6884, US Nuclear Regulatory Commission, Washington, DC
Zurück zum Zitat Pawar RJ, Bromhal GS, Chu SP, Dilmore RM, Oldenburg CM, Stauffer PH, Zhang YQ, Guthrie GD (2016) The National Risk Assessment Partnership’s integrated assessment model for carbon storage: a tool to support decision making amidst uncertainty. Int J Greenhouse Gas Control 52:175–189CrossRef Pawar RJ, Bromhal GS, Chu SP, Dilmore RM, Oldenburg CM, Stauffer PH, Zhang YQ, Guthrie GD (2016) The National Risk Assessment Partnership’s integrated assessment model for carbon storage: a tool to support decision making amidst uncertainty. Int J Greenhouse Gas Control 52:175–189CrossRef
Zurück zum Zitat Peterson RE (ed) (2005) Contaminants of potential concern in the 300-FF-5 operable unit: expanded annual groundwater report for FY 2004, PNNL-15127, Pacific Northwest National Laboratory, Richland, WA Peterson RE (ed) (2005) Contaminants of potential concern in the 300-FF-5 operable unit: expanded annual groundwater report for FY 2004, PNNL-15127, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Reardon EJ (1981) Kd’s: can they be used to describe reversible ion sorption reactions in contaminant migration? Ground Water 19(3):279–286CrossRef Reardon EJ (1981) Kd’s: can they be used to describe reversible ion sorption reactions in contaminant migration? Ground Water 19(3):279–286CrossRef
Zurück zum Zitat Rockhold ML, Bacon DH, Freedman VL, Parker KR, Waichler SR, Williams MD (2013) System-scale model of aquifer, vadose zone, and river interactions for the Hanford 300 area: application to uranium reactive transport. PNNL-22886, Pacific Northwest National Laboratory, Richland, WA Rockhold ML, Bacon DH, Freedman VL, Parker KR, Waichler SR, Williams MD (2013) System-scale model of aquifer, vadose zone, and river interactions for the Hanford 300 area: application to uranium reactive transport. PNNL-22886, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Ronanye MJ, Gorelick SM, Zheng C (2010) Geological modeling of submeter scale heterogeneity and its influence on tracer transport in a fluvial aquifer. Water Resour Res 46, W10519. doi:10.1029/2010WR009348 Ronanye MJ, Gorelick SM, Zheng C (2010) Geological modeling of submeter scale heterogeneity and its influence on tracer transport in a fluvial aquifer. Water Resour Res 46, W10519. doi:10.​1029/​2010WR009348
Zurück zum Zitat Stoliker DL, Kent DB, Zachara JM (2011) Quantifying differences in the impact of variable chemistry on equilibrium uranium (VI) adsorption properties of aquifer sediments. Environ Sci Technol 45:8733–8740CrossRef Stoliker DL, Kent DB, Zachara JM (2011) Quantifying differences in the impact of variable chemistry on equilibrium uranium (VI) adsorption properties of aquifer sediments. Environ Sci Technol 45:8733–8740CrossRef
Zurück zum Zitat Tonkin M, Doherty J (2009) Calibration-constrained Monte Carlo analysis of highly parameterized models using subspace techniques. Water Resour Res 45:W00B10. doi:10.1029/2007WR006678 CrossRef Tonkin M, Doherty J (2009) Calibration-constrained Monte Carlo analysis of highly parameterized models using subspace techniques. Water Resour Res 45:W00B10. doi:10.​1029/​2007WR006678 CrossRef
Zurück zum Zitat Toran L, Bryant S, Saunders J, Wheeler MF (1998) A two-tiered approach to reactive transport: application to Sr mobility under variable pH. Ground Water 36(3):404–408CrossRef Toran L, Bryant S, Saunders J, Wheeler MF (1998) A two-tiered approach to reactive transport: application to Sr mobility under variable pH. Ground Water 36(3):404–408CrossRef
Zurück zum Zitat Truex MJ, Oostrom M, Brusseau ML (2009) Estimating persistent mass flux of volatile contaminants from the vadose zone to groundwater. Ground Water Monit Remidiat 29(2):63–72CrossRef Truex MJ, Oostrom M, Brusseau ML (2009) Estimating persistent mass flux of volatile contaminants from the vadose zone to groundwater. Ground Water Monit Remidiat 29(2):63–72CrossRef
Zurück zum Zitat Truex MJ, Carroll KC, Oostrom M (2012) Assessing soil vapor extraction remediation performance and closure: a review. In: Proceedings Waste Management Symposia 2012. Available at www.wmsym.org. Accessed March 2017 Truex MJ, Carroll KC, Oostrom M (2012) Assessing soil vapor extraction remediation performance and closure: a review. In: Proceedings Waste Management Symposia 2012. Available at www.​wmsym.​org. Accessed March 2017
Zurück zum Zitat Truex MJ, Becker DJ, Simon MA, Oostrom M, Rice AK, Johnson DC (2013) Soil vapor extraction system optimization, transition, and closure guidance. PNNL-21843, Pacific Northwest National Laboratory, Richland, WA Truex MJ, Becker DJ, Simon MA, Oostrom M, Rice AK, Johnson DC (2013) Soil vapor extraction system optimization, transition, and closure guidance. PNNL-21843, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Vrionis HA, Anderson RT, Ortiz-Bernad I, O’Neill KR, Resch CT, Peacock AD, White DC, Lowe M, Lovley DR (2005) Microbiological and geochemical heterogeneity in an in situ uranium bioremediation field site. Appl Environ Microbiol 71:6308–6318CrossRef Vrionis HA, Anderson RT, Ortiz-Bernad I, O’Neill KR, Resch CT, Peacock AD, White DC, Lowe M, Lovley DR (2005) Microbiological and geochemical heterogeneity in an in situ uranium bioremediation field site. Appl Environ Microbiol 71:6308–6318CrossRef
Zurück zum Zitat Waichler SR, Yabusaki SB (2005) Flow and transport in the Hanford 300 Area vadose zone-aquifer-river system, PNNL-15125, Pacific Northwest National Laboratory, Richland, WA Waichler SR, Yabusaki SB (2005) Flow and transport in the Hanford 300 Area vadose zone-aquifer-river system, PNNL-15125, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Williams MD, Rockhold ML, Thorne PD, Chen Y (2008) Three-dimensional groundwater models of the 300 area at the Hanford Site, Washington State. PNNL-17708, Pacific Northwest National Laboratory, Richland, WA Williams MD, Rockhold ML, Thorne PD, Chen Y (2008) Three-dimensional groundwater models of the 300 area at the Hanford Site, Washington State. PNNL-17708, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Yabusaki SB, Fang Y, Williams KH, Murray CJ, Ward AL, Dayvault R, Waichler SR, Newcomer DR, Spane FA, Long PE (2011) Variably saturated flow and multicomponent biogeochemical reactive transport modeling of a uranium bioremediation field experiment. J Contam Hydrol 126(3–4):271–290. doi:10.1016/j.jconhyd.2011.09.002 CrossRef Yabusaki SB, Fang Y, Williams KH, Murray CJ, Ward AL, Dayvault R, Waichler SR, Newcomer DR, Spane FA, Long PE (2011) Variably saturated flow and multicomponent biogeochemical reactive transport modeling of a uranium bioremediation field experiment. J Contam Hydrol 126(3–4):271–290. doi:10.​1016/​j.​jconhyd.​2011.​09.​002 CrossRef
Zurück zum Zitat Yeh GT, Tripathi VS (1991) A model simulating transport of reactive multispecies components: model development and demonstration. Water Resour Res 27(12):3075–3094CrossRef Yeh GT, Tripathi VS (1991) A model simulating transport of reactive multispecies components: model development and demonstration. Water Resour Res 27(12):3075–3094CrossRef
Zurück zum Zitat Zachara J, Brown CF, Liu C, Kelly S, Christensen J, McKinley J, Davis JA, Serne RJ, Dresel E, Um W (2007) A site-wide perspective on uranium geochemistry at the Hanford Site. PNNL-17031, Pacific Northwest National Laboratory, Richland, WA Zachara J, Brown CF, Liu C, Kelly S, Christensen J, McKinley J, Davis JA, Serne RJ, Dresel E, Um W (2007) A site-wide perspective on uranium geochemistry at the Hanford Site. PNNL-17031, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Zachara JM, Freshley MD, Last GV, Peterson RE, Bjornstad BN (2012) Updated conceptual model for the 300 Area uranium groundwater plume. PNNL-22048, RPT-DVZ-AFRI-007, Pacific Northwest National Laboratory, Richland, WA Zachara JM, Freshley MD, Last GV, Peterson RE, Bjornstad BN (2012) Updated conceptual model for the 300 Area uranium groundwater plume. PNNL-22048, RPT-DVZ-AFRI-007, Pacific Northwest National Laboratory, Richland, WA
Zurück zum Zitat Zheng LG, Spycher N, Birkholzer J, Xu TF, Apps J, Kharaka Y (2013) On modeling the potential impacts of CO2 sequestration on shallow groundwater: transport of organics and co-injected H2S by supercritical CO2 to shallow aquifers. Int J Greenhouse Gas Control 14:113–127. doi:10.1016/J.Ijggc.2013.01.014 CrossRef Zheng LG, Spycher N, Birkholzer J, Xu TF, Apps J, Kharaka Y (2013) On modeling the potential impacts of CO2 sequestration on shallow groundwater: transport of organics and co-injected H2S by supercritical CO2 to shallow aquifers. Int J Greenhouse Gas Control 14:113–127. doi:10.​1016/​J.​Ijggc.​2013.​01.​014 CrossRef
Metadaten
Titel
Elements of complexity in subsurface modeling, exemplified with three case studies
verfasst von
Vicky L. Freedman
Michael J. Truex
Mark L. Rockhold
Diana H. Bacon
Mark D. Freshley
Dawn M. Wellman
Publikationsdatum
03.04.2017
Verlag
Springer Berlin Heidelberg
Erschienen in
Hydrogeology Journal / Ausgabe 6/2017
Print ISSN: 1431-2174
Elektronische ISSN: 1435-0157
DOI
https://doi.org/10.1007/s10040-017-1564-6

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