Assessment of Managed Aquifer Recharge through Modeling—A Review
Abstract
:1. Introduction
2. Analysis of Managed Aquifer Recharge Modeling Case Studies
2.1. Modeled Managed Aquifer Recharge Methods
2.2. Survey of Applied Models
2.3. Modeling Objectives
2.3.1. Well, Shaft and Borehole Recharge
2.3.2. Spreading Methods
2.3.3. Induced Bank Filtration
2.3.4. In-Channel Modifications
2.3.5. Rainwater and Runoff Harvesting
3. Discussion
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Main MAR Methods | Specific MAR Methods | |
---|---|---|
Techniques referring primarily to getting water infiltrated | Well, shaft and borehole recharge | Aquifer Storage and Recovery (ASR)/Aquifer Storage, Transfer and Recovery (ASTR) |
Shallow well/shaft/pit infiltration | ||
Spreading methods | Infiltration ponds & basins | |
Flooding | ||
Ditch, furrow, drains | ||
Irrigation | ||
Induced bank infiltration | River/lake bank filtration | |
Dune filtration | ||
Techniques referring primarily to intercepting the water | In-channel modifications | Recharge dams |
Subsurface dams | ||
Sand dams | ||
Channel spreading | ||
Runoff harvesting | Rooftop rainwater harvesting | |
Barriers and bunds | ||
Trenches |
Software | Number of Applications | Model Type | MAR Method | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Saturated Flow | Unsaturated Flow | Water Balance/Watershed | Solute Transport | Reactive Transport | Well, Shaft and Borehole Recharge | Spreading Methods | In-Channel Modifications | Induced Bank Filtration | Rainwater and Runoff Harvesting | ||
CFEST [47] | 2 | x | x | x | |||||||
COMSOL [48] | 2 | x | x | x | x | x | |||||
CXTFIT [42] | 6 | x | x | x | x | ||||||
EASY-LEACHER [45] | 5 | x | x | x | x | ||||||
Eclipse [49] | 3 | x | x | x | |||||||
FEFLOW [34] | 17 | x | x | x | x | x | x | ||||
HST3D [36] | 3 | x | x | x | |||||||
HYDRUS [39] | 3 | x | x | x | |||||||
MARTHE [38] | 4 | x | x | x | x | x | |||||
MIKE-11 [50] | 2 | x | x | x | |||||||
MIKE-SHE [40] | 3 | x | x | x | x | x | |||||
MOCDENS3D [51] | 2 | x | x | x | |||||||
MODFLOW [33] | 73 | x | x | x | x | x | |||||
MT3DMS (MT3D) [41] | 16 | x | x | x | x | x | |||||
NASRI-BF Simulator [28] | 3 | x | x | ||||||||
PHAST [37] | 2 | x | x | x | x | ||||||
PHREEQC [43] | 30 | x | x | x | x | ||||||
PHT3D [44] | 13 | x | x | x | x | ||||||
SEAWAT [35] | 11 | x | x | x | x | ||||||
SUTRA [52] | 5 | x | x | x | x | x | |||||
SWIFT [53] | 2 | x | x | x | |||||||
TOUGH2 [54] | 2 | x | x | x | x | x | |||||
WaterCress [46] | 2 | x | x | x |
Modeling Objective | Model Used | References |
---|---|---|
Clogging | PHREEQC | [118,119,120,123,134,135] |
PHT3D | [103,132,136] | |
CLOG | [30,124] | |
Design | FEFLOW | [63,64,121] |
MODFLOW | [76,77] | |
Optimization | MODFLOW | [7,68,71] |
WaterCress | [46,137] | |
FEFLOW | [82,138] | |
Feasibility | MODFLOW | [55,57,59,61,65,71,84,139,140,141,142,143] |
PHREEQC | [2,114,144] | |
SEAWAT | [83,84] | |
Water quality | PHREEQC | [2,7,100,101,110,111,116,134,145] |
PHT3D | [103,104,107,108,109,126,132,136,144,146] | |
EASY-LEACHER (EL-ASR) | [29,45,126] | |
MODFLOW | [103,108,132,136] | |
MT3DMS | [103,132,136] | |
Geochemical processes | PHREEQC | [2,7,100,101,110,111,112,114,116,117,118,119,120,121,123,134,135,144,145,147,148,149] |
MODFLOW | [103,108,132,136,148,150,151,152] | |
PHAST | [102,149,153] | |
PHT3D | [103,104,107,108,109,126,132,136,146] | |
EASY-LEACHER (EL-ASR) | [29,45,126] | |
MT3DMS | [103,132,136,148] | |
CLOG | [30,124] | |
Groundwater management | MODFLOW | [55,60,61,72,73,74,75,76,77,78,122,154,155] |
FEFLOW | [63,64,82,99,138] | |
HYDRUS 2D | [156,157] | |
SEAWAT | [83,98] | |
SUTRA | [81,158] | |
Recovery efficiency | FEFLOW | [32,63,64,95,99,135,159,160] |
MODFLOW | [57,76,77,78,84,86,92,155,161] | |
SEAWAT | [4,7,84,96,97,98] | |
HST3D | [7,89,90] | |
MT3DMS/MT3D | [78,84,86,92,161] | |
INTERA | [26,27] | |
SUTRA | [87,162] | |
PHAST | [102,153] | |
Saltwater intrusion | FEFLOW | [32,63,64,82,91,95,96,99,121,135,138,159] |
SEAWAT | [4,82,83,84,92,97,98] | |
SUTRA | [81,87,158,162] | |
HST3D | [7,89,90] | |
ECLIPSE | [66,93] | |
MODFLOW | [57,84,155] | |
Residence time | PHT3D | [104,126,146] |
FEFLOW | [63,64,96] | |
MODFLOW | [152,155] |
Modeling Objective | Model Used | References |
---|---|---|
Design | MODFLOW | [163,204] |
Optimization | MODFLOW | [71,168,174,205,206] |
MT3DMS | [168,174] | |
Feasibility | MODFLOW | [57,71,163,164,169,182,207] |
VS2DI | [178,179,208] | |
FEMWATER | [178,179] | |
Water quality | PHREEQC | [188,193,209,210] |
MODFLOW | [131,177,196,197,198,211,212] | |
MARTHE | [18,188,193] | |
MT3DMS | [177,197,198] | |
CXTFIT | [202,211,213] | |
PHT3D | [130,196] | |
MOCDENS3D/MOC3D | [18,212] | |
Geochemical processes | PHREEQC | [18,188,189,193,210] |
MODFLOW | [196,202,212] | |
MARTHE | [18,188,193] | |
EASY-LEACHER | [45,200,214] | |
PHT3D | [191,196] | |
Groundwater management | MODFLOW | [71,142,163,164,169,170,171,174,180,182,205,212,215,216,217] |
MOCDENS3D/MOC3D | [185,212] | |
SEAWAT | [186,187] | |
TOUGH2 | [181,218] | |
FEMWATER, VS2DI | [178,179] | |
SAT | PHREEQC | [193,209,210] |
MODFLOW | [177,197,211] | |
MARTHE | [18,193] | |
MT3DMS | [177,197] | |
Saltwater intrusion | MODFLOW | [57,170,171,207] |
Residence time | SEAWAT | [186,191] |
River flows | MODFLOW | [142,163] |
Country * | Publication Year | Model Used | Modeling Objectives | Reference |
---|---|---|---|---|
Austria | 2006 | MODFLOW, MT3D | GP, C | [219] |
Germany | 2006 | PHREEQC | WQ, GP | [226] |
Germany | 2006 | MODFLOW-MT3DMS, CXTFIT | GP, C | [202] |
Germany | 2002 | FEFLOW | RT, RE, C | [228] |
Germany | 2014 | MODFLOW, MT3DMS | WQ | [220] |
Germany | 2006 | MODFLOW | RT, GM | [221] |
Kenya | 2012 | MODFLOW, NASRI Bank Filtration Simulator | F, WQ, GM | [222] |
L. E. | 2006 | PHREEQC | GP | [227] |
L. E. | 2006 | CXTFIT | WQ, GP | [225] |
L. E. | 2006 | CXTFIT | GP | [42] |
Malawi | 2012 | MODFLOW, NASRI Bank Filtration Simulator | F, WQ, GM | [222] |
T. A. | 2008 | NASRI Bank Filtration Simulator | F, D, O | [28] |
USA | 2006 | MODFLOW, PHT3D | GP, C | [223] |
USA | 2006 | MODFLOW | RE | [224] |
Country | Publication Year | Specific MAR Type | Model Used | Modeling Objectives | References |
---|---|---|---|---|---|
Australia | 2002, 2007 | Channel spreading | SUTRA | GM, SI | [158,233] |
China | 2012 | Recharge dam | FEFLOW, MIKE-SHE, SIWA, WBalMo, MIKE-11 | GM, SI, O | [138] |
China | 2015 | Recharge dam | FEFLOW | GM | [234] |
India | 2014 | Recharge dam | FEFLOW, MIKE-11, NAM | GM, SI | [232] |
India | 1998 | Recharge dam | MODFLOW | GM | [229] |
India | 2010 | Recharge dam | MODFLOW | GM | [217] |
India | 2006 | Recharge dam | MODFLOW, analytical spreadsheet model | RE | [235] |
Italy | 2006 | Recharge dam | MODFLOW | RE | [55] |
Japan | 2006 | Subsurface dam | 2D FEM model | D | [56] |
Namibia | 2012 | Recharge dam | MODFLOW | GM | [230] |
Russia | 2006 | Channel spreading | hydrogeological model | RT, GM | [236] |
Turkey | 2012 | Subsurface dam | SEEP/W (2D) | GM, D | [237] |
USA | 2012 | Recharge dam | MODFLOW | GM | [231] |
Uzbekistan | 2010 | Channel spreading | MODFLOW | F | [238] |
Country | Publication Year | Specific MAR Type | Model Used | Modeling Objectives | Reference |
---|---|---|---|---|---|
India | 2011 | Trenches | water balance model | GM | [22] |
India | 2012 | Trenches | rainfall-runoff model | GM, O | [23] |
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Ringleb, J.; Sallwey, J.; Stefan, C. Assessment of Managed Aquifer Recharge through Modeling—A Review. Water 2016, 8, 579. https://doi.org/10.3390/w8120579
Ringleb J, Sallwey J, Stefan C. Assessment of Managed Aquifer Recharge through Modeling—A Review. Water. 2016; 8(12):579. https://doi.org/10.3390/w8120579
Chicago/Turabian StyleRingleb, Jana, Jana Sallwey, and Catalin Stefan. 2016. "Assessment of Managed Aquifer Recharge through Modeling—A Review" Water 8, no. 12: 579. https://doi.org/10.3390/w8120579