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Simulations of freshwater lens recharge and salt/freshwater interfaces using the HYDRUS and SWI2 packages for MODFLOW Cover

Simulations of freshwater lens recharge and salt/freshwater interfaces using the HYDRUS and SWI2 packages for MODFLOW

Open Access
|Feb 2018

References

  1. Bailey, R.T., Morway, E.D., Niswonger, R.G., Gates, T.K., 2013. Modeling variably saturated multispecies reactive groundwater solute transport with MODFLOW-UZF and RT3D. Ground Water, 51, 5, 752–761. DOI: 10.1002/ird.1699.10.1002/ird.1699
  2. Bakker, M., Schaars, F., Hughes, J.D., Langevin, C.D., Dausman, A.M., 2013. Documentation of the seawater intrusion (SWI2) package for MODFLOW. USGS Numbered Series “Techniques and Methods” 6-A46. US Geol. Survey, Reston, VA, USA.10.3133/tm6A46
  3. Batalha, M.S., Barbosa, M.C., Faybishenko, B., van Genuchten, M.Th., 2018. Effect of temporal averaging of meteorological data on predictions of groundwater recharge. Journal of Hydrology and Hydrodynamics, 66, 2, 143–152.10.1515/johh-2017-0051
  4. Beegum, S., Šimůnek, J., Szymkiewicz, A., Sudheer, K.P., Nambi, I.M., 2018. Implementation of solute transport in the vadose zone into the ‘HYDRUS package for MODFLOW’. Groundwater, (under review).10.1111/gwat.12815
  5. Carsel, R.F., Parrish, R.S., 1988. Developing joint probability distributions of soil water retention characteristics. Water Resources Research, 24, 5, 755–769.10.1029/WR024i005p00755
  6. Chang, S.W., Nemec, K., Kalin, L., Clement, T.P., 2016. Impacts of climate change and urbanization on groundwater resources in a barrier island. Journal of Environmental Engineering, D4016001.10.1061/(ASCE)EE.1943-7870.0001123
  7. Comte, J.C., Join, J.L., Banton, O., Nicolini, E., 2014. Modelling the response of fresh groundwater to climate and vegetation changes in coral islands. Hydrogeology Journal, 22, 8, 1905–1920.10.1007/s10040-014-1160-y
  8. Contractor, D.N., Jenson, J.W., 2000. Simulated effect of vadose infiltration on water levels in the Northern Guam Lens Aquifer. Journal of Hydrology, 229, 3, 232–254.10.1016/S0022-1694(00)00157-8
  9. Dan, H.C., Xin, P., Li, L., Li, L., Lockington, D., 2012. Capillary effect on flow in the drainage layer of highway pavement. Canadian Journal of Civil Engineering, 39, 6, 654–666.10.1139/l2012-050
  10. Dausman, A., Langevin, C., Bakker M., Schaars, F., 2010. A comparison between SWI and SEAWAT – the importance of dispersion, inversion and vertical anisotropy. In: Proceedings of the 21st Salt Water Intrusion Meeting, Azores, Portugal.
  11. De Louw, P.G., Eeman, S., Siemon, B., Voortman, B.R., Gunnink, J., Van Baaren, E.S., Oude Essink, G., 2011. Shallow rainwater lenses in deltaic areas with saline seepage. Hydrology and Earth System Sciences, 15, 3659–3678.10.5194/hess-15-3659-2011
  12. Dyck, S., Chardabellas, P., 1963. Wege zur Ermittlung der nutzbaren Grundwasserreserven. Ber. Geol. Ges. DDR, 8, 245–262.
  13. Eeman, S., Zee, S.V.D., Leijnse, A., De Louw, P.G.B., Maas, C., 2012. Response to recharge variation of thin rainwater lenses and their mixing zone with underlying saline groundwater. Hydrology and Earth System Sciences, 16, 10, 3535–3549.10.5194/hess-16-3535-2012
  14. Eeman, S., De Louw, P.G.B., Van der Zee, S.E.A.T. M., 2017. Cation exchange in a temporally fluctuating thin freshwater lens on top of saline groundwater. Hydrogeology Journal, 25, 1, 223–241.10.1007/s10040-016-1475-y
  15. Feddes, R.A., Kowalik, P.J., Zaradny, H., 1978. Simulation of Field Water Use and Crop Yield. John Wiley & Sons, New York, NY.
  16. Foussereau, X., Graham, W.D., Akpoji, G.A., Destouni, G., Rao, P.S.C., 2001. Solute transport through a heterogeneous coupled vadose-saturated zone system with temporally random rainfall. Water Resources Research, 37, 6, 1577–1588.10.1029/2000WR900389
  17. Freeze, R.A., Cherry, J.A., 1979. Groundwater. Prentice Hall.
  18. Grabarczyk, S., Żarski, J., 1992. Próba statystycznej weryfikacji niektórych wzorów określających ewapotranspirację potencjalną. [An attempt at statistical verification of selected formulae estimating potential evapotranspiration.] Zeszyty Naukowe Akademii Techniczno Rolniczej w Bydgoszczy (Rolnictwo). (in Polish.)
  19. Hanson, R., Boyce, S., Schmid, W., Hughes, J., Mehl, S., Leake, S., Maddock III, Th., Niswonger, R., 2014. One-Water Hydrologic Flow Model (MODFLOW–OWHM), Techniques and Methods 6-A51. US Geological Survey, Reston, VA, USA. Available from: http://dx. DOI: org/10.3133/tm6A51.10.3133/tm651
  20. Harbaugh, A.W., 2005. MODFLOW-2005, the US Geological Survey modular ground-water model: the ground-water flow process. US Department of the Interior, US Geological Survey, Reston, VA, USA, pp. 6-A16.10.3133/tm6A16
  21. Healy, R.W., 2008. Simulating water, solute, and heat transport in the subsurface with the VS2DI software package. Vadose Zone Journal, 7, 632–639.10.2136/vzj2007.0075
  22. Healy, R.W., 2010. Estimating Groundwater Recharge. Cambridge University Press, Cambridge, UK, 245 p.10.1017/CBO9780511780745
  23. Holding, S., Allen, D.M., 2015. From days to decades: numerical modelling of freshwater lens response to climate change stressors on small low-lying islands. Hydrology and Earth System Sciences, 19, 2, 933–949.10.5194/hess-19-933-2015
  24. Hölting, B., Coldewey, W.G., 2013. Hydrogeologie: Einführung in die allgemeine und angewandte Hydrogeologie. Springer-Verlag.10.1007/978-3-662-59667-8
  25. Houben, G., Post, V.E.A., 2016. How long does the recovery of a freshwater lens take after a massive saltwater inundation? Experiences from the island of Baltrum, Germany, after the 1962 flood disaster. In: Proceedings of 24th Salt Water Intrusion Meeting and the 4th Asia-Pacific Coastal Aquifer Management Meeting, 4–8 July 2016, Cairns, Australia.
  26. Hsieh, P.A., Wingle, A.W., Healy, R.W., 1999. VS2DI: A graphical software package for simulating fluid flow and solute or energy transport in variably saturated porous media. USGS Water-Resources Investigation Report 99-4130. US Geological Survey, Reston, USA.
  27. Huang, M., Barbour, S.L., Elshorbagy, A., Zettl, J.D., Si, B.C., 2011. Water availability and forest growth in coarse-textured soils. Canadian Journal of Soil Science, 91, 2, 199–210.10.4141/cjss10012
  28. Hunt, R.J., Prudic, D.E., Walker, J.F., Anderson, M.P., 2008. Importance of unsaturated zone flow for simulating recharge in a humid climate. Ground Water, 46, 4, 551–560.10.1111/j.1745-6584.2007.00427.x
  29. Illangasekare, T., Tyler, S.W., Clement, T.P., Villholth, K.G., Perera, A.P.G.R.L., Obeysekera, J., Gunatilaka, A., Panabokke, C.R, Hyndman, D.W., Cunningham, K.J., Kaluarachchi, J.J., Yeh, W.W-G., van Genuchten, M.Th., Jensen, K., 2006. Impacts of the 2004 tsunami on groundwater resources in Sri Lanka. Water Resour. Res., 42, W05201. DOI: 10.1029/2006WR004876.10.1029/2006WR004876
  30. Jocson, J.M. U., Jenson, J.W., Contractor, D.N., 2002. Recharge and aquifer response: northern Guam lens aquifer, Guam, Mariana Islands. Journal of Hydrology, 260, 1, 231–254.10.1016/S0022-1694(01)00617-5
  31. Kamps, P.W.J.T., Nienhuis, P., Witte, J.P.M., 2008. Effects of climate change on the water table in the coastal dunes of the Amsterdam Water Supply. In: Proceedings MODFLOW.
  32. Leterme, B., Gedeon, M., Jacques, D., 2013. Groundwater recharge modeling of the Nete catchment (Belgium) using the HYDRUS 1D - MODFLOW package. In: Šimůnek, J., M.Th. van Genuchten, Kodešová, R. (Eds.): Proc. of the 4th International Conference “HYDRUS Software Applications to Subsurface Flow and Contaminant Transport Problems, Prague, Czech Republic, pp. 235–244. ISBN: 978-80-213-2380-3
  33. Leterme, B., Gedeon, M., Laloy, E., Rogiers, B., 2015. Unsaturated flow modeling with HYDRUS and UZF: calibration and intercomparison. In: Proc. MODFLOW and More 2015. Integrated GroundWater Modeling Center, May 31–June 3, 2015, Golden, CO.
  34. Luoma, S., Okkonen, J., 2014. Impacts of future climate change and Baltic Sea level rise on groundwater recharge, groundwater levels, and surface leakage in the Hanko aquifer in southern Finland. Water, 6, 12, 3671–3700.10.3390/w6123671
  35. Mahmoodzadeh, D., Ketabchi, H., Ataie-Ashtiani, B., Simmons, C.T., 2014. Conceptualization of a fresh groundwater lens influenced by climate change: A modeling study of an arid-region island in the Persian Gulf, Iran. Journal of Hydrology, 519, 399–413.10.1016/j.jhydrol.2014.07.010
  36. Meyer, P.D., Rockhold, M.L., Gee, G.W., 1997. Uncertainty analyses of infiltration and subsurface flow and transport for SDMP sites. Rep. NUREG/CR-6565, PNNL-11705. U.S. Nuclear Regulatory Commission, Washington, DC.10.2172/541818
  37. Mollema, P.N., Antonellini, M., 2013. Seasonal variation in natural recharge of coastal aquifers. Hydrogeology Journal, 21, 4, 787–797.10.1007/s10040-013-0960-9
  38. Neitsch, S.L., Williams, J.R., Arnold, J.G., Kiniry, J.R., 2011. Soil and water assessment tool theoretical documentation version 2009. Texas Water Resources Institute, College Station, TX.
  39. Neuman, S.P., Feddes R.A., Bresler, E., 1974. Finite element simulation of flow in saturated-unsaturated soils considering water uptake by plants. Third Annual Report, Project No. A10-SWC-77. Hydraulic Engineering Lab., Technion, Haifa, Israel.
  40. Niswonger, R.G., Prudic, D.E., Regan, R.S., 2006. Documentation of the unsaturated-zone flow (UZF1) package for modeling unsaturated flow between the land surface and the water table with MODFLOW-2005 (No. 6-A19).10.3133/tm6A19
  41. Oude Essink, G.H.P., Van Baaren, E.S., De Louw, P.G., 2010. Effects of climate change on coastal groundwater systems: a modeling study in the Netherlands. Water Resources Research, 46, 10.10.1029/2009WR008719
  42. Persson, M., Saifadeen, A., 2016. Effects of hysteresis, rainfall dynamics, and temporal resolution of rainfall input data in solute transport modelling in uncropped soil. Hydrological Sciences Journal, 61, 5, 982–990.10.1080/02626667.2014.950582
  43. Prieto, C., Kotronarou, A., Destouni, G., 2006. The influence of temporal hydrological randomness on seawater intrusion in coastal aquifers. Journal of Hydrology, 330, 1, 285–300.10.1016/j.jhydrol.2006.03.024
  44. Sadurski, A., Borawska, J., Burczyk, T., 1987. Warunki hydrogeologiczne i hydrochemiczne Mierzei Helskiej [Hydrogeological and hydrochemical conditions of Hel Peninsula.] Kwartalnik Geologiczny, 31, 4, 767–782. (In Polish.)
  45. Scanlon, B.R., Christman, M., Reedy, R.C., Porro, I., Šimůnek, J., Flerchinger, G.N., 2002. Intercode comparisons for simulating water balance of surficial sediments in semiarid regions. Water Resources Research, 38, 12, 1323. DOI: 10.1029/2001WR001233.10.1029/2001WR001233
  46. Schroeder, P.R., Dozier, T.S., Zappi, P.A., McEnroe, B.M., Sjostrom, J.W., Peton, R.L., 1994. The Hydrologic Evaluation of Landfill Performance (HELP) Model: Engineering Documentation for Version 3, EPA/600/R-94/168b. US. Environmental Protection Agency, Risk Reduction Engineering Laboratory, Cincinnati.
  47. Seo, H.S., Šimůnek, J., Poeter, E., 2007. Documentation of the HYDRUS Package for MODFLOW-2000, the U.S. Geological Survey Modular Ground-Water Model, GWMI 2007-01. International Ground Water Modeling Center, Colorado School of Mines, Golden, Colorado, 96 p.
  48. Šimůnek, J., Jarvis, N. J., van Genuchten, M.Th., Gärdenäs, A., 2003. Review and comparison of models for describing nonequilibrium and preferential flow and transport in the vadose zone. Journal of Hydrology, 272, 1, 14–35.10.1016/S0022-1694(02)00252-4
  49. Šimůnek, J., Šejna, M., Saito, H., Sakai, M., van Genuchten, M.Th., 2008a. The HYDRUS-1D software package for simulating the one-dimensional movement of water, heat, and multiple solutes in variably-saturated media, Version 4.0. HYDRUS Software Series 3. Department of Environmental Sciences, University of California, Riverside, CA, USA, 315 p.
  50. Šimůnek, J., van Genuchten, M.Th., Šejna M., 2008b. Development and applications of the HYDRUS and STANMOD software packages and related codes. Vadose Zone Journal, 7, 2, 587–600.10.2136/vzj2007.0077
  51. Šimůnek, J., van Genuchten, M.Th., Šejna, M., 2016. Recent developments and applications of the HYDRUS computer software packages. Vadose Zone Journal, 15, 7, 25 p. DOI: 10.2136/vzj2016.04.0033.10.2136/vzj2016.04.0033
  52. Sinclair, P., Galvis, S.C., Bosserelle, A.L., Post, V.E.A., Werner, A., 2016. Sustainability of freshwater lenses in atoll environments. In: Proceedings of 24th Salt Water Intrusion Meeting and the 4th Asia-Pacific Coastal Aquifer Management Meeting, 4–8 July 2016, Cairns, Australia.
  53. Smerdon, B.D., Mendoza, C.A., Devito, K.J., 2008. Influence of subhumid climate and water table depth on groundwater recharge in shallow outwash aquifers. Water Resources Research, 44, W08427.10.1029/2007WR005950
  54. Stuyfzand, P.J., 2016. Formation and hydrogeochemistry of a freshwater lens on a sandbar island in saltwater lake Grevelingen, Netherlands. In: Proceedings of 24th Salt Water Intrusion Meeting and the 4th Asia-Pacific Coastal Aquifer Management Meeting, 4–8 July 2016, Cairns, Australia.
  55. Sulzbacher, H., Wiederhold, H., Siemon, B., Grinat, M., Igel, J., Burschil, T., Günther, T., Hinsby, K., 2012. Numerical modelling of climate change impacts on freshwater lenses on the North Sea Island of Borkum using hydrological and geophysical methods. Hydrology and Earth System Sciences, 16, 10, 3621–3643.10.5194/hess-16-3621-2012
  56. Szymańska, P., Tisler, W., Schütz, C., Szymkiewicz, A., Neuweiler, I., Helmig, R., 2016. Experimental and numerical analysis of air trapping in a porous medium with coarse textured inclusions. Acta Geophysica, 64, 6, 2487–2509.10.1515/acgeo-2016-0095
  57. Therrien, R., McLaren, R. G., Sudicky, E. A., Panday, S. M., 2010. HydroGeoSphere: A three-dimensional numerical model describing fully-integrated subsurface and surface flow and solute transport. Groundwater Simulations Group, University of Waterloo, Waterloo, ON.
  58. Thoms, R.B., Johnson, R.L., Healy, R.W., 2006. User’s guide to the Variably Saturated Flow (VSF) process for MODFLOW. Techniques and Methods 6-A18. US Geological Survey, Reston, VA.10.3133/tm6A18
  59. Trglavcnik, V., Robinson, C., Morrow, D., White, D., Paquin, V., Weber, K., 2016. Effect of tides, waves and precipitation on groundwater flow dynamics on Sable Island, Canada. In: Proceedings of 24th Salt Water Intrusion Meeting and the 4th Asia-Pacific Coastal Aquifer Management Meeting, 4–8 July 2016, Cairns, Australia.
  60. Twarakavi, N.K.C., Šimůnek, J., Seo, H.S., 2008. Evaluating interactions between groundwater and vadose zone using HYDRUS-based flow package for MODFLOW. Vadose Zone Journal, 7, 2, 757–768.10.2136/vzj2007.0082
  61. Vandenbohede, A., Mollema, P.N., Greggio, N., Antonellini, M., 2014. Seasonal dynamic of a shallow freshwater lens due to irrigation in the coastal plain of Ravenna, Italy. Hydrogeology Journal, 22, 4, 893–909.10.1007/s10040-014-1099-z
  62. Vero, S.E., Ibrahim, T. G., Creamer, R. E., Grant, J., Healy, M. G., Henry, T., Kramers, G., Richards, K.G., Fenton, O. 2014. Consequences of varied soil hydraulic and meteorological complexity on unsaturated zone time lag estimates. Journal of Contaminant Hydrology, 170, 53–67.10.1016/j.jconhyd.2014.10.002
  63. Verruijt, A., 1968. A note on the Ghyben-Herzbeg formula. International Association of Scientific Hydrology Bulletin, 13, 4, 43–46. DOI: 10.1080/02626666809493624.10.1080/02626666809493624
  64. Voss, C.I., Provost, A.M., 2010. SUTRA: A model for saturated-unsaturated, variable-density groundwater flow with solute or energy transport. USGS Water-Resources Investigations Report, 02-4231, U.S. Geological Survey, Reston, VA
  65. Werner, A.D., Lockinton, D.A., 2004. The potential for soil salinization above aquifers influenced by seawater intrusion. In: Proc. 13th International Soil Conservation Conference, Brisbane, paper No. 790.
  66. Werner, A.D., Bakker, M., Post, V.E., Vandenbohede, A., Lu, C., Ataie-Ashtiani, B., Simmons, C.T., Barry, D.A., 2013. Seawater intrusion processes, investigation and management: recent advances and future challenges. Advances in Water Resources, 51, 3–26.10.1016/j.advwatres.2012.03.004
  67. Winston, R.B., 2009. ModelMuse: a graphical user interface for MODFLOW-2005 and PHAST. US Geological Survey, Reston, VA.10.3133/tm6A29
DOI: https://doi.org/10.2478/johh-2018-0005 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 246 - 256
Submitted on: Jun 19, 2017
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Accepted on: Jan 10, 2018
|
Published on: Feb 6, 2018
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2018 Adam Szymkiewicz, Anna Gumuła-Kawęcka, Jirka Šimůnek, Bertrand Leterme, Sahila Beegum, Beata Jaworska-Szulc, Małgorzata Pruszkowska-Caceres, Wioletta Gorczewska-Langner, Rafael Angulo-Jaramillo, Diederik Jacques, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.