Page 125 - AJWEP-22-6
P. 125

SWAT-based LULC impacts on groundwater recharge

                49.  Mechal  A,  Wagner  T, Birk S. Recharge  variability   semiarid Limpopo Province of South Africa. Hydrogeol
                   and sensitivity  to climate:  The example  of Gidabo   J. 2023;31(8):2291-2306.
                   River Basin, Main Ethiopian Rift.  J  Hydrol Reg Stud.      doi: 10.1007/s10040-023-02682-x
                   2015;4:644-660.                                  52.  Dekongmen BW,  Anornu  GK,  Kabo-Bah  AT,  et al.
                   doi: 10.1016/j.ejrh.2015.09.001                      Groundwater recharge estimation and potential recharge
                50.  Jin  T, Zhang X, Xie J, Liang J,  Wang  T. Study on   mapping in the Afram Plains of Ghana using SWAT and
                   hydrological  response  of  runoff  to  land  use  change  in   remote  sensing techniques.  Groundwater Sustain  Dev.
                   the  Jing River  Basin, China.  Environ Sci  Pollut  Res.   2022;17:100741.
                   2023;30(45):101075-101090.                           doi: 10.1016/j.gsd.2022.100741
                   doi: 10.1007/s11356-023-29526-1                  53.  Awan UK, Ismaeel A. A new technique to map groundwater
                51.  Lindle  J,  Villholth  KG, Ebrahim  GY,  Sorensen  JPR,   recharge in irrigated areas using a SWAT model under
                   Taylor  RG, Jensen KH. Groundwater recharge          changing climate. J Hydrol. 2014;519:1368-1382.
                   influenced by ephemeral river flow and land use in the      doi: 10.1016/j.jhydrol.2014.08.049


































































                Volume 22 Issue 6 (2025)                       119                           doi: 10.36922/AJWEP025180139
   120   121   122   123   124   125   126   127   128   129   130