References

  1. Y. Yihdego, C. Danis, A. Paffard, Why is the groundwater level rising? A case study using HARTT to simulate groundwater level dynamic, Water Environ. Res., 89 (2017) 2142–2152.
  2. A. Singh, P. Krause, S.N. Panda, W.-A. Flugel, Rising water table: a threat to sustainable agriculture in an irrigated semiarid region of Haryana, India, Agric. Water Manage., 97 (2010) 1443–1451.
  3. H. Daneshian, N. Kalantari, Evaluation the performance of irrigation networks in groundwater level rising (case study Behbahan plain), Ecohydrology, 5 (2018) 135–148.
  4. D. Thirumalaivasan, M. Karmegam, K. Venugopal, AHPDRASTIC: software for specific aquifer vulnerability assessment using DRASTIC model and GIS, Environ. Modell. Software, 18 (2003) 645–656.
  5. E. Cabrera Jr., R. Cobacho, V. Estruch-Guitart Vicent, J. Aznar, Analytical hierarchical process (AHP) as a decision support tool in water resources management, J. Water Supply Res. Technol. AQUA, 60 (2011) 343–351.
  6. P.-T. Chuang, Combining the analytic hierarchy process and quality function deployment for a location decision from a requirement perspective, Int. J. Adv. Manuf. Technol., 18 (2001) 842–849.
  7. H. Mohammadzadeh, M.A. Dadgar, H. Nassery, Prediction of the effect of water supplying from Shirindare dam on the Bojnourd aquifer using MODFLOW2000, Water Resour., 44 (2017) 216–225.
  8. R.W.H. Carroll, G.M. Pohll, S. Earman, R.L. Hershey, A comparison of groundwater fluxes computed with MODFLOW and a mixing model using deuterium: application to the eastern Nevada Test Site and vicinity, J. Hydrol., 361 (2008) 371–385.
  9. M.P. Anderson, W.W. Woessner, R.J. Hunt, Applied Groundwater Modeling: Simulation of Flow and Advective Transport, Academic Press, London, 2015.
  10. J. Bear, Hydraulics of Groundwater, Dover Publications Inc, Mineola, New York, 2012.
  11. C.R. Faust, J.W. Mercer, Groundwater modeling: numerical models, Groundwater, 18 (1980) 395–409.
  12. M.G. McDonald, A.W. Harbaugh, A Modular Three-Dimensional Finite-Difference Ground-Water Flow Model, US Geological Survey, 1988.
  13. C. Wels, L.L. Findlater, Groundwater Modeling as a Tool for Closure Planning: Prediction of Zinc Transport for Alternative Cover Scenarios, 8th International Conference on Acid Rock Drainage (ICARD) and Securing the Future: Mining, Metals and the Environment in a Sustainable Society, Curran Associates Inc., Sweden, 2009, pp. 1217–1226.
  14. X. Xu, G. Huang, H. Zhan, Z. Qu, Q. Huang, Integration of SWAP and MODFLOW-2000 for modeling groundwater dynamics in shallow water table areas, J. Hydrol., 412 (2012) 170–181.
  15. N. Kresic, A. Mikszewski, Hydrogeological Conceptual Site Models: Data Analysis and Visualization, CRC Press, Taylor & Francis Group, Boca Raton, FL, 2012.
  16. A. Movahedian, M. Chitsazan, L. Nozarpour, Management of an aquifer with an emphasis on the interaction of the aquifer and river using MODFLOW model in Gotvand– Aghili plain, Khuzestan, Iran, Arabian J. Geosci., 9 (2016) 119, doi: org/10.1007/s12517-015-2121-z.
  17. S. Viaroli, L. Mastrorillo, F. Lotti, V. Paolucci, R. Mazza, The groundwater budget: a tool for preliminary estimation of the hydraulic connection between neighboring aquifers, J. Hydrol., 556 (2018) 72–86.