3,808
Views
8
CrossRef citations to date
0
Altmetric
Research Articles

AHP based analysis of groundwater potential in the western escarpment of the Ethiopian rift valley

, , &
Pages 175-188 | Received 29 Oct 2020, Accepted 04 Jul 2021, Published online: 19 Jul 2021

References

  • Abdullahi, B. U., Rai, J. K., Momoh, M., & Udensi, E. E. (2013). Application of remote sensing and GIS in ground water mapping in some selected localities in Kebbi state, Nigeria. International Journal of Marine, Atmospheric & Earth. Sciences, 1(2), 81–95. https://www.academia.edu/52234009/Application of remote sensing and GIS in groundwater mapping in some selected localities in Kebu state Nigeria.
  • Adiat, K. A. N., Nawawi, M. N. M., & Abdullah, K. (2012). Assessing the accuracy of GIS-based elementary multi criteria decision analysis as a spatial prediction tool–a case of predicting potential zones of sustainable groundwater resources. Journal of Hydrology, 440-441, 75–89. https://doi.org/10.1016/j.jhydrol.2012.03.028
  • Adwumi A.J., & Anifowose, Y.B.(2017). Hydrological characterization of Owo and its environs using remote sensing and GIS. Applied water sciences, 7(6), 2987–3000.
  • Agarwal, E., Agarwal, R., Garg, R. D., & Garg, P. K. (2013). Delineation of groundwater potential zone: An AHP/ANP approach. Journal of Earth System Science, 122(3), 887–898. https://doi.org/10.1007/s12040-013-0309-8
  • Altchenko, Y., & Villholth, K. G. (2014). Mapping irrigation potential from renewable groundwater in Africa--a quantitative hydrological approach. Hydrology & Earth System Sciences Discussions,19(2), 1055–1097.https://doi.org/105194/hess-1055-2015,2015
  • Argaz, A., Ouahman, B., Darkaoui, A., Bikhtar, H., Yabsa, K., & Laghzal, A. (2019). Application of remote sensing techniques and GIS-multicriteria decision analysis for groundwater potential mapping in souss watershed, Morocco. Journal of Materials and Environmental Science, 10(5), 411–421.
  • Awulachew, S. B., Erkossa, T., & Namara, R. E. (2010). Irrigation potential in Ethiopia–Constraints and opportunities for enhancing the system. International Water Management Institute.
  • Bashe, B. B. (2017). Groundwater potential mapping using remote sensing and GIS in Rift Valley Lakes Basin, Weito Sub Basin, Ethiopia. International Journal of Scientific and Engineering Research, 8(2), 43–50.
  • Biswas, A., Nath, B., Bhattacharya, P., Halder, D., Kundu, A. K., Mandal, U.,Jacks, G. (2012). Hydrogeochemical contrast between brown and grey sand aquifers in shallow depth of Bengal Basin: Consequences for sustainable drinking water supply. Science of the Total Environment, 431, 402–412. https://doi.org/10.1016/j.scitotenv.2012.05.031
  • Chowdhury, A., Jha, M. K., & Chowdary, V. M. (2010). Delineation of groundwater recharge zones and identification of artificial recharge sites in West Medinipur district, West Bengal, using RS, GIS and MCDM techniques. Environmental Earth Sciences, 59(6), 1209. https://doi.org/10.1007/s12665-009-0110-9
  • Chowdhury, A., Jha, M. K., Chowdary, V. M., & Mal, B. C. (2009). Integrated remote sensing and GIS‐based approach for assessing groundwater potential in West Medinipur district, West Bengal, India. International Journal of Remote Sensing, 30(1), 231–250. https://doi.org/10.1080/01431160802270131
  • Chuma, C., Orimoogunje, O. O., Hlatywayo, D. J., & Akinyede, J. O. (2013). Application of remote sensing and geographical information systems in determining the groundwater potential in the crystalline basement of Bulawayo metropolitan area, Zimbabwe. Advances in Remote Sensing, 2(2), 149–161. https://doi.org/10.4236/ars.2013.22019
  • Das, N., & Mukhopadhyay, S. (2020). Application of multi-criteria decision making technique for the assessment of groundwater potential zones: A study on Birbhum district, West Bengal, India. Environment, Development and Sustainability, 22(2), 931–955. https://doi.org/10.1007/s10668-018-0227-7
  • Dinesan, V. P. G. G. (2015). Application of geoinformatics for the delineation of groundwater prospects zones- A case study for melattur grama panchayat in Kerala, India. International Conference On Water Resources, Coastal And Ocean,Aquatic procedia, 4, 1389–1396. https://doi.org/10.116.j.aqpro.2015.02.180.
  • FAO, 2016. Global diagnostic on groundwater governance. USA, 1–210.
  • Fentaw, B., & Manaye, M. (2019). Hydrogeological and hydrochemical maps of Akaki Beseka NC 37–14 sheet. GSE.
  • Gadrani, L., Lominadze, G., & Tsitsagi, M. (2018). F assessment of landuse/landcover (LULC) change of Tbilisi and surrounding area using remote sensing (RS) and GIS. Annals of Agrarian Science, 16(2), 163–169. https://doi.org/10.1016/j.aasci.2018.02.005
  • Gintamo, T. T. (2014). Ground water potential evaluation based on integrated GIS and remote sensing techniques, in Bilate River Catchment: South Rift Valley of Ethiopia. American Scientific Research Journal for Engineering, Technology, and Sciences (ASRJETS), 10(1), 85–120.
  • Giordano, M. (2006). Agricultural groundwater use and rural livelihoods in sub-Saharan Africa: A first-cut assessment. Hydrogeology Journal, 14(3), 310–318. https://doi.org/10.1007/s10040-005-0479-9
  • Harter, T. (2003). Basic concepts of groundwater hydrology. UCANR Publications.
  • Hussein, A. A., Govindu, V., & Nigusse, A. G. M. (2017). Evaluation of groundwater potential using geospatial techniques. Applied Water Science, 7(5), 2447–2461. https://doi.org/10.1007/s13201-016-0433-0
  • Ibrahim-Bathis, and Ahmed S. A. (2016). Geospatial technology for delineating groundwater potential zones in Doddahalla watershed of Chitradurga district, India. The Egyptian Journal of Remote Sensing and Space,19(2) 123–234. https:dot.org/10.1016.j.ejrs.2016.06.002
  • Jenks, G. F. (1967). The data model concept in statistical mapping. International Yearbook of Cartography, 7, 186–190.
  • Kirubakaran, M., Johnny, J. C., Ashokraj, C., & Arivazhagan, S. (2016). A geostatistical approach for delineating the potential groundwater recharge zones in the hard rock terrain of Tirunelveli taluk, Tamil Nadu, India. Arabian Journal of Geosciences, 9(5), 382. https://doi.org/10.1007/s12517-016-2419-5
  • Kudamnya, E. A., & Andongma, W. T. (2017). Predictive mapping for groundwater within Sokoto Basin, North Western Nigeria. Journal of Geography, Environment and Earth Science International, 10(2), 1–14. https://doi.org/10.9734/JGEESI/2017/32440
  • Kumar, T., Gautam, A. K., & Kumar, T. (2014). Appraising the accuracy of GIS-based multi-criteria decision making technique for delineation of groundwater potential zones. Water Resources Management, 28(13), 4449–4466. https://doi.org/10.1007/s11269-014-0663-6
  • MacDonald, A. M., Bonsor, H. C., Dochartaigh, B. É. Ó., & Taylor, R. G. Quantitative maps of groundwater resources in Africa. (2012). Environmental Research Letters, 7(2), 024009. British Geological Survey Groundwater Programme Internal Report Ir/10/103. https://doi.org/10.1088/1748-9326/7/2/024009
  • Magesh, N. S., Chandrasekar, N., & Soundranayagam, J. P. (2012). Delineation of groundwater potential zones in Theni district, Tamil Nadu, using remote sensing, GIS and MIF techniques. Geoscience Frontiers, 3(2), 189–196. https://doi.org/10.1016/j.gsf.2011.10.007
  • Meijerink, A. M., Bannert, D., Batelaan, O., Lubczynski, M. W., & Pointet, T. (2007). Remote sensing applications to groundwater. Unesco.
  • Mu, E., & Pereyra-Rojas, M. (2017). Understanding the analytic hierarchy process. In Practical decision making (pp. 7–22). Springer cham. https:doi.org/10.1007.978-3-319-33861-3_2
  • Murthy, K. S. R. (2000). Ground water potential in a semi-arid region of Andhra Pradesh-a geographical information system approach. International Journal of Remote Sensing, 21(9), 1867–1884. https://doi.org/10.1080/014311600209788
  • Kumar P. S., Balasundareshwaran A., Kumaraswamy K and Balaselvakumar S (2017). Assessment of groundwater potential zones in dindigul district, tamil nadu, using gis-based on analytical hierarchical process (AHP) technique. International Journal of Recent Scientific Research, 8(12), 22684–22690. https://doi.org/10.24327.ijrsr.2017.0812.1316
  • Nair, P. P., & Babu, S. S. (2015). Identification and analysis of groundwater potential zones in Hosur Taluk, Tamilnadu using remote sensing and geographical information system. International Journal of research review in engineering and Management, 1(2),61-77.
  • Rahmati, O., Samani, A. N., Mahdavi, M., Pourghasemi, H. R., & Zeinivand, H. (2015). Groundwater potential mapping at Kurdistan region of Iran using analytic hierarchy process and GIS. Arabian Journal of Geosciences, 8(9), 7059–7071. https://doi.org/10.1007/s12517-014-1668-4
  • Ramamoorthy, P., & Rammohan, V. (2015). Assessment of groundwater potential zone using remote sensing and GIS in Varahanadhi watershed, Tamilnadu, India. International Journal for Research in Applied Science and Engineering Technology, 3(5), 695–702.
  • Saaty, T. L., & Vargas, L. G. (2012). Models, methods, concepts & applications of the analytic hierarchy process (Vol. 175). Springer Science & Business Media.
  • Sheng, T. (1990). Watershed management field manual. Food And Agriculture Organization Of The United Nations(FAO), Rome,1–148.
  • Siebert, S., Burke, J., Faures, J. M., Frenken, K., Hoogeveen, J., Döll, P., & Portmann, F. T. (2010). Groundwater use for irrigation—a global inventory. Hydrology and Earth System Sciences, 14(10), 1863–1880. https://doi.org/10.5194/hess-14-1863-2010
  • Uhl, V. W., Baron, J. A., Davis, W. W., Warner, D. B., & Seremet, C. C. (2009). Groundwater development, basic concept for expanding CRS water programs. Catholic Relief Service, USA. https://www.crsprogramquality.org
  • Waikar, M. L., & Nilawar, A. P. (2014). Identification of groundwater potential zone using remote sensing and GIS technique. International Journal of Innovative Research in Science, Engineering and Technology, 3(5), 12163–12174.
  • Weiss, A.(2001). Topographic position and landform analysis. In a poster presentation, ESRI user conference, San Diego, CA. 
  • Wind, Y., & Saaty, T. L. (1980). Marketing applications of the analytic hierarchy process. Management Science, 26(7), 641–658. https://doi.org/10.1287/mnsc.26.7.641
  • Yahaya, S., Ahmad, N., & Abdalla, R. F. (2010). Multicriteria analysis for flood vulnerable areas in Hadejia-Jama’are River basin, Nigeria. European Journal of Scientific Research, 42(1), 71–83.
  • Yeh, H. F., Cheng, Y. S., Lin, H. I., & Lee, C. H. (2016). Mapping groundwater recharge potential zone using a GIS approach in Hualian River, Taiwan. Sustainable Environment Research, 26(1), 33–43. https://doi.org/10.1016/j.serj.2015.09.005
  • Yeh, H. F., Lin, H. I., Lee, S. T., Chang, M. H., Hsu, K. C., & Lee, C. H. (2014). GIS and SBF for estimating groundwater recharge of a mountainous basin in the Wu River watershed, Taiwan. Journal of Earth System Science, 123(3), 503–516. https://doi.org/10.1007/s12040-014-0420-5
  • Yonghui An, Y. W. (2011). GIS-based suitability assessment for shallow groundwater development in Zhangye Basin. International Conference on Environmental Science and Engineering (pp. 1397–1403). Center for hydrogeology and environmental geology, CGS, Baoding Hebei, China: Procedia Environmental Sciences.