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Aquifer characterization and groundwater flow dynamics in the upper left bank of Jemma River catchment, Blue Nile Basin, Ethiopia

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Abstract

The complex nature of the Ethiopian aquifer requires detail, characterization, and analysis. Consequently, characterization of groundwater flow and major aquifer systems was conducted in the upper left bank of the Jemma River catchment in the Blue Nile Basin. The research area covered 1255 km2. The main objective of the research was to characterize the aquifer systems and groundwater flow dynamics of the area. The software applied during the research work were aquifer test, ArcMap 10.2, global mapper 17, AutoCAD, Exelis ENVI, geomatics, and rockworks. Pumping test data and spring discharge together with qualitative field description were used to classify the aquifer system. Accordingly, the different aquifer classes are fissured aquifer developed on basalts on the plateau (moderate to low groundwater potential), mixed aquifer (high permeability and very high productivity), fissured aquifer developed on basalts in the valleys (high permeability and low to moderate storage), porous and fissured sandstone aquifer in deep valleys, and localized aquifer with intergranular porosity and permeability (high permeability and high productivity). From the analysis of water level measurements of boreholes, hand-dug wells, and springs, the groundwater flow system is controlled by surface morphology and lineaments. Therefore, the groundwater flows from SE and S-SSE corner towards the N and NW corner of the catchment. Understanding groundwater dynamics and characterizing the aquifer in the catchment are very crucial which in turn help to manage the available water resource for domestic, industrial, and agricultural purpose. Besides, the research will be used to manage aquifers from depletion.

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References

  • Abebe T (1995) The Yerer-Tulu Wellel extentional structures evidences from remote sensing, petrologic and geochronological data, central Ethiopian, Ethiopian Institute of Geological Surveys, unpublished report. Addis Ababa, Ethiopia

    Google Scholar 

  • Abebe T, Mazarini F, Innocenti F, Manneti P (1998) The Yerer – Tulu Wellel volcano-tectonic lineament: a transitional structure in central Ethiopia and the associated magmatic activity. J Afr Earth Sci 1:135–1150

    Article  Google Scholar 

  • Alemayehu T (2006) Groundwater occurrence in Ethiopia. Addis Ababa University, Ethiopia

    Google Scholar 

  • Assefa G (1981) Gohatsion formation: a new lithostratigraphic unit from the Blue Nile River Basin, Ethiopia. Geosci J 1:63–88

    Google Scholar 

  • Assefa G (1991) Lithostratigraphy and environment of deposition of the Late Jurassic-Early Cretaceous sequences of the central part of northern plateau, Ethiopia. N.Jb. Geol 182:255–284

    Google Scholar 

  • Ayalew D, Gibson SA (2009) Head-to-tail transition of the Afar mantle plume: geochemical evidence from Miocene bimodal basalt–rhyolite succession in the Ethiopian Large Igneous Province. Lithos 11:461–476

    Article  Google Scholar 

  • Ayalew D, Barbery F, Marty B, Reisberg L, Yirgu G, Pik R (2002) Source, genesis, and timing of giant ignimbrite deposits associated with Ethiopian continental flood basalts. Geochem Cosmochim Acta 66(8):1429–1448

    Article  Google Scholar 

  • Ayenew T, Demlie M, Wohnlich S (2008) Hydrogeological framework and occurrence of groundwater in the Ethiopian aquifers, Elsevier publisher. J Afr Earth Sci 52:97–113

    Article  Google Scholar 

  • Azagegn T (2008) Hydrogeochemical characterization of aquifer systems in Upper Awash River Basin and adjacent Abay plateau using geochemical modeling and isotope hydrology, Unpublished MSc thesis, Addis Ababa University, Addis Ababa, Ethiopia

  • Azagegn T (2014) Groundwater dynamics in the left bank catchments of the Middle Blue Nile and the Upper Awash River Basins, central Ethiopia, Unpublished Ph.D. Thesis, Addis Ababa University, Addis Ababa, Ethiopia

  • Azagegn T, Asrat A, Ayenew T, Kebede S (2015) Litho-structural control on interbasin groundwater transfer in central Ethiopia, Elsevier. J Afr Earth Sci 101:383–395

    Article  Google Scholar 

  • Bagyaraj M, Tenaw M, Gnanachandrasamy G, Gemechu B (2019) Data of remote sensing and GIS - to demarcate the potential sector of groundwater in Debre Berhan, Amhara region, Ethiopia. Data Brief 26:104542. https://doi.org/10.1016/j.dib.2019.104542

    Article  Google Scholar 

  • Boccaletti M, Bonini M, Mazzuoli R, Abebe B, Piccardi L, Tortorici L (1998) Quaternary oblique extensional tectonics in the Ethiopian rift (Horn of Africa). Tectonophysics 287:97–116

    Article  Google Scholar 

  • Cook PG (2003) A guide to regional groundwater flow in fractured rock aquifers. CSIRO, Australia, p 115

    Google Scholar 

  • Fetter CW (1994) Applied hydrogeology, Third edn. Prentice-Hall, New Jersey 695PP

    Google Scholar 

  • Fetter GW (2001) Applied Hydrogeology. University of Wisconsin-Oshkesh, Oshkesh, USA, p 598

  • Food and Agriculture Organization of the United Nations (1998) World Reference bases for soil resources, a frame work for international classification, report No. 84. Rome

  • Freeze RA, Cherry JA (1979) Groundwater. Prentice-Hall, New Jersey 616 pp

    Google Scholar 

  • Furi W (2010) Hydrogeology of complex volcanic systems in the continental rifted zone, Integrated geochemical, geophysical and hydrodynamic approach. Middle Awash basin, Main Ethiopian Rift, Ethiopia. Ph.D. Thesis, University of Poitiers, France

  • Gani NDS, Abdusalam MG (2006) Remote sensing analysis of the Gorge of the Blue Nile, Ethiopia, with emphasis on Dejen-Gohatsion Region. J Afr Earth Sci 44:135–150

    Article  Google Scholar 

  • Gani NDS, Royhan GM, Abdusalam MG (2007) Blue Nile incision on the Ethiopian plateau, Pulsed Plateau growth, Pliocene uplift, and hominid evolution. GSA Today 9:4–11

    Article  Google Scholar 

  • Gani NDS, Abdelsalam MG, Gera S, Gani MR (2008) Stratigraphic and structural evolution of the Blue Nile Basin, Northwestern Ethiopian Plateau. Geol J 44(1):30–56

    Article  Google Scholar 

  • Gnanachandrasamy G, Yongzhang Z, Bagyaraj M, Venkatramanan S, Ramkumar T, Shugong W (2018) Remote sensing and GIS based groundwater potential zone mapping in Ariyalur district, Tamil Nadu, India. J Geol Soc India 92:484–490

    Article  Google Scholar 

  • Gouin P, Mohr P (1964) Gravity traverses in Ethiopian (IQterimReport). Bull Geophy Obs Addis Ababa 7:185–239

    Google Scholar 

  • Kazmin V (1979) Stratigraphy and correlation of Cenozoic volcanic rocks in Ethiopia. Rep Ethiop Instit Geol Surv 106:1–26

    Google Scholar 

  • Kazmin V, Berhe SM, Walsh J (1980) Report on the geological map of Ethiopian rift valley, Ethiopian Institute of Geological Survey. Addis Ababa, Ethiopia

    Google Scholar 

  • Kebede S (2013) Groundwater in Ethiopia. Springer, Hydrogeology

    Book  Google Scholar 

  • Kebede S, Yves T, Alemayehu T, Ayenew T (2005) Groundwater recharge, circulation and geochemical evolution in the source region of the Blue Nile River. Ethiop Appl Geochem 20:1658–1676

    Article  Google Scholar 

  • Kieffer B, Arndt N, Lapierre H, Bastien F, Bosch D, Pecher A, Yirgu G, Ayenew D, Weis D, Jeram DA, Keller MC (2004) Flood and shield basalt from Ethiopia: magmas from the African super swell. J Petrol 45:793–834

    Article  Google Scholar 

  • Korme T, Acocella A, Abebe B (2004) The role of pre-existing structures in the origin, propagation and architecture of faults in the main Ethiopian rift. Gondwana Res 2:467–479

    Article  Google Scholar 

  • Kovalevsky SV, Kruseman PG, Rushton KR (2004) An international guide for hydrogeological investigations, UNESCO, IHP-VI, series on groundwater NO.3.

  • Merla G, Abbate E, Canuti P, Sagri M, Tacconi P (1973) Geological map of Ethiopian and Somalia 1:2,000.000 Scale, CNR. Italy

  • Meshesha D, Hailemariam D, Mamo A (2010) Geology of Debre Birhan area, geological survey of Ethiopia basic geoscience mapping core process. Addis Ababa, Ethiopia

    Google Scholar 

  • Mulugeta G, Abebe A, Korme T, Sokoutis D (2007) Emplacement mechanisms for conditional Flood Basalts and implications for plume activity during incipient continental breakup. Journal of African Earth Sciences, 48: 137–146

  • Pik R, Deniel C, Coulon C, Yirgu G, Hofmann C, Ayalew D (1998) The northwestern Ethiopian plateau flood basalts: classification and spatial distribution of magma types. J Volcanol Geotherm Res 81:91–111

    Article  Google Scholar 

  • Pik R, Marty B, Carignan J, Lave J (2003) Stability of the upper Nile drainage network (Ethiopia) deduced from (U-Th)/He thermochronometry implications for uplift and erosion of the Afar Plume Dome. Earth Planet Sci 215:73–88

    Article  Google Scholar 

  • Pik R, Marty B, Carignan J, Yirgu G, Ayalew D (2008) Timing of East African rift development in southern Ethiopia. Geol Soc Am 6:167–170

    Google Scholar 

  • Rushton KR (2003) Groundwater Hydrology Conceptual and Computational Models. John Wiley & Sons

  • Sima J (2009) Water resources management and environmental protection studies of the Jemma River Basin for improved food security, Unpublished report, Addis Ababa, Ethiopia

  • Singal BS, Gupta RP (1999) Applied hydrogeology of fractured rocks. Springer, London, p 429

    Book  Google Scholar 

  • Tefera M, Chernet T, Haro W (1996) Explanation of the geological map of Ethiopia, 2nd edn. Ethiopian Institute of Geological Survey, Addis Ababa

    Google Scholar 

  • Tessema T (2015) Ground water potential evaluation based on integrated GIS and remote sensing techniques, in Bilate River catchment: south rift valley of Ethiopia. Am Sci Res J Eng Technol Sci (ASRJETS) 10(1):85–120

    Google Scholar 

  • Todd DK (1976) Groundwater hydrology, 2nd edn. John Willey and Sons, New York, p 535

    Google Scholar 

  • Wolela A (2008) Sedimentation of the Triassic-Jurassic sandstone formation, Blue Nile Basin, Ethiopia. J Afr Earth Sci 52:30–42

    Article  Google Scholar 

  • Wolela A (2009) Sedimentation and deposition environments of the Barremian-Cenomanian Debre Libanose sandstone, Blue Nile Basin, Ethiopia. Creataceous Res 30:1133–1145

    Article  Google Scholar 

  • Zanettin B, Gregnanin A, Justin Visentin E, Morbidelli M, Piccirillo EM (1974) Geological and petrological researches on the volcanics of central Ethiopia. Padova, Italy

    Google Scholar 

  • Zanettin B, Justin Viesntin E, Piccirillo EM, (1978) Volcanic succession, tectonics and magmatology in central Ethiopia, Geological Surveys of Ethiopia, Addis Ababa, unpublished report.

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Correspondence to Melkamu Adimaw Melesse.

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This article is part of the Topical Collection on Recent advanced techniques in water resources management

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Melesse, M.A., Bagyaraj, M., Fentahun, T.M. et al. Aquifer characterization and groundwater flow dynamics in the upper left bank of Jemma River catchment, Blue Nile Basin, Ethiopia. Arab J Geosci 13, 549 (2020). https://doi.org/10.1007/s12517-020-05542-0

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