Abstract
Hydrostratigraphy and hydrogeology of the Maira vicinity is important for the characterization of aquifer system and developing numerical groundwater flow models to predict the future availability of the water resource. Conventionally, the aquifer parameters are obtained by the analysis of pumping tests data which provide limited spatial information and turn out to be costly and time consuming. Vertical electrical soundings and pump testing of boreholes were conducted to delineate the aquifer system at the western part of the Maira area, Khyber Pakhtun Khwa, Pakistan. Aquifer lithology in the eastern part of the study area is dominated by coarse sand and gravel whereas the western part is characterized by fine sand. An attempt has been made to estimate the hydraulic conductivity of the aquifer system by establishing a relationship between the pumping test results and vertical electrical soundings by using regression technique. The relationship is applied to the area along the resistivity profiles where boreholes are not drilled. Our findings show a good match between pumped hydraulic conductivity and estimated hydraulic conductivity. In case of sparse borehole data, regression technique is useful in estimating hydraulic properties for aquifers with varying lithology.
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References
Akaolisa, C. (2006). Aquifer transmissivity and basement structure determination using resistivity sounding at Jos Plateau state Nigeria. Environmental Monitoring and Assessment, 114, 27–34.
Akhter, G., Farid, A., & Ahmed, Z. (2012). Determining the depositional pattern by resistivity-seismic inversion for the aquifer system of Maira Area, Pakistan. Environmental Monitoring and Assessment, 184, 161–170.
Alile, O. M., Amadasun, C. V. O., & Evbuomwan, A. I. (2008). Application of vertical electrical sounding method to decipher the existing subsurface stratification and groundwater occurrence status in a location in Edo North of Nigeria. International Journal of Physical Sciences, 3(10), 245–249.
Archie, G. E. (1942). The electrical resistivity log as an aid in determining some reservoir characteristics. Transactions of the American Institute of Mining and Metallurgical Engineers/Petroleum Division, 146, 54–62.
Baharuddin, M. F. T., Talib, S., Hashim, R., Abidin, M. H. Z., & Ishak, M. F. (2011). Time-lapse resistivity investigation of salinity changes at an ex-promontory land: a case study of Carey Island, Selangor, Malaysia. Environmental Monitoring and Assessment, 180, 345–369.
Bear, J. (1972). Dynamics of fluids in porous media. Dynamics of fluids in porous media. New York: American Elsevier.
Bloemendaal S., & Sadiq M. (1985). Technical report on groundwater resources in Maira Area, Mardan District, N. W. F. P, Report No. IX-1. Peshawar: WAPDA Hydrogeology Directorate.
Borner, F. D., Schopper, J. R., & Weller, A. (1996). Evaluation of transport and storage properties in the soil and groundwater zone from induced polarization measurements. Geophysical Prospecting, 44, 583–601.
Bundschuh, J. (1992). Hydrochemical and hydrogeological studies of groundwater in Peshawar Valley, Pakistan. Geological Bulletin, University of Peshawar, 25, 23–37.
Burbank, D. W. (1983). The chronology of intermontane basin development in the northwestern Himalaya and the evolution of the northwest syntaxis. Earth and Planetary Science Letters, 64, 77–92.
Chandra, S., Ahmad, S., Ram, A., & Dewandel, B. (2008). Estimation of hard rock aquifer hydraulic conductivity from geoelectrical measurements: a theoretical development with field application. Journal of Hydrology, 357, 218–227.
Chapuls, R. P. (1992). Using Cooper–Jacob approximation to take account of pumping well pipe storage effects in early drawdown data of a confined aquifer. Groundwater, 30(3), 331–337.
Ellis, D. V., & Singer, M. V. (2007). Well logging for earth scientists. Dordrecht: Springer.
Fetter, C. W. (1988). Applied hydrogeology (p. 592). Columbus: Merrill.
Fitts, C. R. (2002). Groundwater science. California, USA: Academic Press.
Freeze, R. A., & Cherry, J. A. (1979). Groundwater (p. 604). New Jersey: Prentice Hall Publications.
Government of Pakistan. (1998). Census report, Swabi District, N.W.F.P.
Helander, D. P. (1983). Fundamentals of formation evaluation (p. 332). Tulsa: Oil and Gas Consultants International Inc.
Hubbard, S., & Rubin, Y. (2002). Hydrogeophysics: state-of-the-discipline. EOS, 83(51), 602–606.
Huntley, D. (1986). Relation between permeability and electrical resistivity in granular aquifers. Ground Water, 24(4), 466–474.
IPI2WIN-1D computer programme. (2000). Programs set for 1-D VES data interpretation. Moscow: Department of Geophysics, Geological Faculty, Moscow University.
Kazmi, A. H., & Jan, M. Q. (1997). Geology and tectonics of Pakistan. Karachi: Graphic. 5C, 6/10.
Kelly, W. E. (1977). Geoelectric sounding for estimating hydraulic conductivity. Ground Water, 15(6), 420–425.
Kruseman, G. P., and de Ridder, N. A. (1991). Analysis and evaluation of pumping test data. Wageningen: International Institute for Land Reclamation and Improvement, 6700 AA.
Kruseman, G. P., & Naqavi, S. A. H. (1988). Hydrogeology and groundwater resources of the North-West Frontier Province Pakistan (p. 110). Peshawar: WAPDA Hydrogeology Directorate.
Kunetz, G. (1966). Principles of direct current resistivity prospecting (p. 03). Berlin: Borntraeger.
Lima, O. A. L., & Niwas, S. (2000). Estimation of hydraulic parameters of shaly sandstone aquifers from geoelectrical measurements. Journal of hydrology, 235, 12–36.
MacDonald, M. A., Burleigh, J., & Burgess, B. G. (1999). Estimating transmissivity from surface resistivity soundings: an example from Thames Gravels. Quarterly Journal of Engineering Geology, 32, 199–205.
Martin, N. R., Siddiqui, S. T. A., & King, B. H. (1962). A geological reconnaissance of the region between the Lower Swat and Indus rivers of Pakistan. The Geological Bulletin of the Punjab University, 2, 1–15.
Mazac, O., Cislerova, M., & Vogel, T. (1988). Application of geophysical methods in describing spatial variability of saturated hydraulic conductivity in the zone of aeration. Journal of Hydrology, 79, 1–19.
Mondal, N. C., Rao, A. V., & Singh, V. P. (2010). Efficacy of electrical resistivity and induced polarization methods for revealing fluoride contaminated groundwater in granite terrain. Environmental Monitoring and Assessment, 168, 103–114.
Niwas, S., & Singhal, D. C. (1981). Estimation of aquifer transmissivity from Dar Zarrouk parameters in porous media. Journal of Hydrology, 50, 393–399.
Niwas, S., & Singhal, D. C. (1985). Aquifer transmissivity of porous media from resistivity data. Journal of Hydrology, 82, 143–153.
Niwas, S., Gupta, P. K., & de Lima, O. A. L. (2006). Nonlinear electrical response of saturated shaly sand reservoir and its asymptotic approximations. Geophysics, 71(3), 129–133.
Nizami, M. M. I. (1973). Reconnaissance soil survey of Peshawar Vale (revised) (p. 165). Lahore: Soil Survey of Pakistan.
Ochuko, A. (2011). Underground water exploration of Oleh, Nigeria using the electrical resistivity method. Scientific Research and Essays, 6(10), 4295–4300.
Orellana, E., & Mooney, H. (1966). Master tables and curves for vertical electrical sounding over layered structures. Intercenia, Madrid, Geophysical Prospecting, 4, 249–279.
Rafiq, M., & Jan, M. Q. (1989). Geochemistry and petrogenesis of the Ambela Granite Complex, NW Pakistan. Geological Bulletin of the Peshawar University, 22, 159–179.
Ratej, J., & Brenčič, M. (2005). Comparative analysis of single well aquifer test methods on the mill tailing site of Boršt Žirovski vrh, Slovenija. RMZ-Materials and Geoenvironment, 52(4), 669–684.
Robinson, E., & Coruh, C. (1988). Basic Exploration Geophysics. New York: John Wiley & Sons.
Rubin, Y. and Hubbard, S. S. (2005). Hydrogeophysics. Water Science and Technology Library, (50), Springer, 521.
Sajjad, M. A. (1988). Hydrogeological reconnaissance survey in Gadoon area. Peshawar: WAPDA Hydrogeology Directorate.
Salem, H. S. (1999). Determination of fluid transmissivity and electric transverse resistance for shallow aquifers and deep reservoirs from surface well log electric measurements. Hydrology and Earth Systems Sciences, 3(3), 421–427.
Salem, H. S. (2000). Modelling of lithology and hydraulic conductivity of shallow sediments from resistivity measurements using Schlumberger vertical electrical soundings. Energy sources, 23(7), 599–618.
Searle, M. P., Khan, M. A., Jan, M. Q., DiPietro, J. A., Pogue, K. R., Pivnik, D. A., Sercombe, W. J., Izatt, C. N., Blisniuk, P. M., Treloar, P. J., Gaetani, M., & Zanchi, A. (1996). Geological map of north Pakistan and adjacent areas of northern Ladakh and Western Tibet. Salt Ranges, Kohistan, Karakoram and Hindi Kush: Western Himalaya.
Shahzad, F., Mahmood, S. A., & Gloaguen, R. (2009). Drainage network and lineament analysis: an approach for Potwar Plateau (northern Pakistan). Journal of Mountain Sciences, 6(1), 14–24.
Shahzad, F., Mahmood, S. A., & Gloaguen, R. (2010). Nonlinear analysis of drainage systems to examine surface deformation: an example from Potwar Plateau (Northern Pakistan). Nonlinear Processes in Geophysics, 17, 137–147.
Shevnin, V., Delgado-Rodriguez, O., Mousatov, A., & Ryjov, A. (2006). Estimation of hydraulic conductivity on clay content in soil determined from resistivity data. Geofisica Internacional, 45(3), 195–207.
Singh, K. P. (2005). Nonlinear estimation of aquifer parameters from surficial resistivity measurements. Hydrology and Earth Systems Sciences, 2, 918–938.
Son, Y. (2011). Assessment of concentration in contaminated soil by potentially toxic elements using electrical properties. Environmental Monitoring and Assessment, 176, 1–11.
Sorensen, K. I., Auken, E., Christensen, N. B., & Pellerin, L. (2005). An integrated approach for hydrogeophysical investigations: new technologies and a case history. Near Surface Geophysics, (2), Application and Case Histories.
Soupios, P., Kouli, M., Vallianatos, F., Vafidis, A., & Stavroulakis, G. (2007). Estimation of aquifer hydraulic parameters from surficial geophysical methods: a case study of keritis basin in Chania (Crete-Greece). Journal of Hydrology, 338, 122–131.
Sultan, S. A., Mekhemer, H. M., Santos, F. A. M., & Abd Alla, M. (2009). Geophysical measurements for subsurface mapping and groundwater exploration at the central part of the Sinai Peninsula, Egypt. The Arabian Journal for Science and Engineering, 34(1A), 103–119.
Tahirkheli, R. A. K. (1985). The magnetostratigraphy, fission track dating and stratigraphic evolution of the Peshawar intermontane basin, northern Pakistan. Geological Society of America Bulletin, 96, 539–552.
Tiab, D., & Donaldson, E. C. (2004). Petrophysics (2nd ed.). Burlington: Gulf Professional.
Vinegar, H. J., & Waxman, M. H. (1984). Induced polarization of shaly sands. Geophysics, 49(8), 1267–1287.
Waxman, M. H., & Smits, L. J. M. (1968). Electrical conductivities in oil bearing sands. Journal of the society of Petroleum Engineers, 8, 107–122.
Worthington, P. F. (1993). The uses and abuses of the Archie equations: 1. The formation factor–porosity relationship. Journal of Applied Geophysics, 30, 215–228.
Yadav, G. S. (1995). Relating hydraulic and geoelectric parameters of Jayant aquifer, India. Journal of Hydrology, 167, 23–38.
Yadav, G. S., & Abolfazli, H. (1998). Geoelectrical soundings and their relationship to hydraulic parameters in semiarid regions of Jalore, northwestern India. Journal of Applied Geophysics, 39, 35–51.
Zananiri, I., Memou, T., & Lachanas, G. (2006). Vertical electrical sounding (VES) survey at the central part of Kos Island, Aegean, Greece. Geosciences, 411-413.
Zohdy, A. A. R., Eaton, G. P., & Mabey, D. R. (1974). Applications of surface geophysics to groundwater investigations, Chapter-D1, Techniques of water resources Investigations of the United States, United States Geological Survey, P.O Box, 25425, Denver.
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Farid, A., Jadoon, K., Akhter, G. et al. Hydrostratigraphy and hydrogeology of the western part of Maira area, Khyber Pakhtunkhwa, Pakistan: a case study by using electrical resistivity. Environ Monit Assess 185, 2407–2422 (2013). https://doi.org/10.1007/s10661-012-2720-z
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DOI: https://doi.org/10.1007/s10661-012-2720-z
Keywords
- Aquifers
- Intermontane basin
- Hydraulic conductivity
- Hydrostratigraphy
- Vertical electrical sounding