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Groundwater Exploration Using the Vertical Electrical Sounding at Semi-Arid Region; West of Rezevi Khorasan, İran

Year 2026, Volume: 13 Issue: 1 , 29 - 41 , 31.03.2026
https://doi.org/10.17350/HJSE19030000370
https://izlik.org/JA24SZ56PT

Abstract

Determination of groundwater potential in the western part of Rezevi Khorasan (Mashhad city), located in the arid and semi-arid region of Iran, has a critical importance in terms of water resources management and sustainable development. The majority of the study area is located on Quaternary alluvium. Vertical electrical sounding (VES) measurements were taken at 51 locations using Schlumberger configuration to determine the hydrogeological characteristics of the region. The evaluation of the VES curves revealed that the area is characterised by four layers. The resistivity values of the first layer, which has a wide resistivity range, vary between (64.3 and 720 Ω m). The resistivity values of the second layer vary between (55.9 and 549 Ω m), the resistivity range of the third layer (50 to 560 Ω m) and the fourth layer (12.9 to 626 Ω m). Dar- Zarrouk parameters were calculated using the resistivity and thickness parameters. Evaluation of the result indicates that the alluvium units that can provide groundwater. The permeability is high in sandy and gravelly units.

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References

  • Azimi, S., Azhdary Moghaddam, M., & Hashemi Monfared, S. A. (2018). Spatial assessment of the potential of groundwater quality using fuzzy AHP in GIS. Arabian journal of geosciences, 11(7), 142. https://doi.org/10.1007/s12517-018-3484-8
  • Kumar, M., Singh, P., & Singh, P. (2022). Integrating GIS and remote sensing for delineation of groundwater potential zones in Bundelkhand Region, India. The Egyptian Journal of Remote Sensing and Space Science, 25(2), 387-404. https://doi.org/10.1016/j.ejrs.2022.03.003
  • Abdelrahman, K., Hazaea, S. A., Hazaea, B. Y., Abioui, M., & Al-Awah, H. (2023). Groundwater potentiality in hard-rock terrain of southern Saudi Arabia using electrical resistivity tomography approach. Journal of King Saud University-Science, 35(9), 102928. https://doi.org/10.1016/j.jksus.2023.102928
  • Alarifi, S. S., Abdelrahman, K., & Hazaea, B. Y. (2022). Depicting of groundwater potential in hard rocks of southwestern Saudi Arabia using the vertical electrical sounding approach. Journal of King Saud University-Science, 34(7), 102221.https://doi.org/10.1016/j.jksus.2022.102221
  • Arora, T., Kumar, S., Khan, R., Jalander, D., & Ahmed, S. (2023). Electrical imaging to decode the potential aquifer locations for water security in semiarid Niger, Africa. Geosystems and Geoenvironment, 2(2), 100072. https://doi.org/10.1016/j.geogeo.2022.100072
  • Zarif, F., Isawi, H., Elshenawy, A., & Eissa, M. (2021). Coupled geophysical and geochemical approach to detect the factors affecting the groundwater salinity in coastal aquifer at the area between Ras Sudr and Ras Matarma area, South Sinai, Egypt. Groundwater for Sustainable Development, 15, 100662. https://doi.org/10.1016/j.gsd.2021.100662
  • Raju, N. J., & Reddy, T. V. K. (1998). Fracture pattern and electrical resistivity studies for groundwater exploration. Environmental Geology, 34(2), 175-182. https://doi.org/10.1007/s002540050269
  • Yusuf, M. A., & Abiye, T. A. (2019). Risks of groundwater pollution in the coastal areas of Lagos, southwestern Nigeria. Groundwater for Sustainable Development, 9, 100222. https://doi.org/10.1016/j.gsd.2019.100222
  • Zarif, F., Barseem, M., Elshenawy, A., & Ulugergerli, E. U. (2024). 2D nonlinear inversion of DC resistivity measurements, a case study; southeastern part of Ras El Dabaa, Northwestern coast, Egypt. Environmental Earth Sciences, 83(21), 599. https://doi.org/10.1007/s12665-024-11896-5
  • Genedi, M. A., & Ahmed, M. A. (2024). Salinity distribution in agricultural land by geophysical, hydrochemical and geostatistical approaches: a pilot area located in Qelabshowah–Belqas, East Nile Delta region, Egypt. Environmental Earth Sciences, 83(9), 269. https://doi.org/10.1007/s12665-024-11570-w
  • Abdulaziz, A. M., Faid, A. M., Abdulaziz, M., & Faid, A. M. (2017). Aquifer Characterization and Groundwater Potential Using Integrated Geoelectric Sounding and Geoinformatics in West Maghagha Area, Minia Governorate, Egypt. Journal of Geology, 7(11), 1625-1643. https://doi.org/10.4236/ojg.2017.711109
  • Akingboye, A. S., Bery, A. A., Kayode, J. S., Ogunyele, A. C., Adeola, A. O., Omojola, O. O., & Adesida, A. S. (2023). Groundwater-yielding capacity, water–rock interaction, and vulnerability assessment of typical gneissic hydrogeologic units using geoelectrohydraulic method. Acta Geophysica, 71(2), 697-721. https://doi.org/10.1007/s11600-022-00930-4
  • Van Dam, J. C., & Meulenkamp, J. J. (1967). Some results of the geo‐electrical resistivity method in ground water investigations in the Netherlands. Geophysical Prospecting, 15(1), 92-115. https://doi.org/10.1111/j.1365-2478.1967.tb01775.x
  • De Breuck, W., & De Moor, G. (1969). The water-table aquifer in the eastern coastal area of Belgium. Hydrological Sciences Journal, 14(3), 137-155. https://doi.org/10.1080/02626666909493739
  • Zohdy, A. A. (1989). A new method for the automatic interpretation of Schlumberger and Wenner sounding curves. Geophysics, 54(2), 245-253. https://doi.org/10.1190/1.1442648
  • Batayneh, A. T. (2006). Use of electrical resistivity methods for detecting subsurface fresh and saline water and delineating their interfacial configuration: a case study of the eastern Dead Sea coastal aquifers, Jordan. Hydrogeology Journal, 14(7), 1277-1283. https://doi.org/10.1007/s10040-006-0034-3
  • Ekinci, Y. L., & Demirci, A. (2008). A damped least-squares inversion program for the interpretation of Schlumberger sounding curves. Journal of Applied Sciences, 8(22), 4070-4078.
  • Tizro, A. T., Voudouris, K. S., Salehzade, M., & Mashayekhi, H. (2010). Hydrogeological framework and estimation of aquifer hydraulic parameters using geoelectrical data: a case study from West Iran. Hydrogeology Journal, 18(4), 917-929. https://doi.org/10.1007/s10040-010-0580-6
  • Kumar, D., Rai, S. N., Thiagarajan, S., & Kumari, Y. R. (2014). Evaluation of heterogeneous aquifers in hard rocks from resistivity sounding data in parts of Kalmeshwar taluk of Nagpur district, India. Current Science, 1137-1145. https://www.jstor.org/stable/24105627
  • Kasidi, S. (2017). Groundwater Exploration Using Electrical Resistivity Method A Case Study In Federal Capital Teritory (FCT) Abuja. Nigeria. International Journal of Engineering and Applied Sciences, 4(10), 257370.
  • Hasan, M., Shang, Y., Jin, W., Shao, P., Yi, X., & Akhter, G. (2020). Geophysical assessment of seawater intrusion into coastal aquifers of bela plain, Pakistan. Water, 12(12), 3408. https://doi.org/10.3390/w12123408
  • de Almeida, A., Maciel, D. F., Sousa, K. F., Nascimento, C. T. C., & Koide, S. (2021). Vertical electrical sounding (VES) for estimation of hydraulic parameters in the porous aquifer. Water, 13(2), 170.https://doi.org/10.3390/w13020170
  • Gamal, G., Hassan, T. M., Gaber, A., & Abdelfattah, M. (2023). Groundwater quality assessment along the West of New Damietta Coastal City of Egypt using an integrated geophysical and hydrochemical approaches. Environmental Earth Sciences, 82(4), 107. https://doi.org/10.1007/s12665-023-10762-0
  • Mohammed, M. A., Szabo, N. P., & Szűcs, P. (2023). Exploring hydrogeological parameters by integration of geophysical and hydrogeological methods in northern Khartoum state, Sudan. Groundwater for Sustainable Development, 20, 100891.https://doi.org/10.1016/j.gsd.2022.100891
  • Musa, K. O., Obasi, I. A., Auduson, A. E., Jatto, S. S., Akudo, E. O., Akpah, F., & Jimoh, J. B. (2023). Integrating geoelectrical and borehole data in the characterization of basement-rock aquifers in the Lokoja area, northcentral Nigeria. Geosystems and Geoenvironment, 2(4), 100217.https://doi.org/10.1016/j.geogeo.2023.100217
  • Moghaddasi H, Moghaddasi M. (2023). Geoelectrical studies of west aquifer of Mashhad for study and delineation of the location of drinking wells for the emergency drinking water supply plan in Mashhad. Tehran (Iran): Jafab Kavosh Consulting Engineers Co. (Translated from Persian).
  • Purlatifi A. (2001). Tuorkaba Report. Tehran (Iran): Ministry of Mines and Iron, Earth Science and Underground Resources Research Organisation (Geological Survey of Iran).
  • Akhter, G., & Hasan, M. J. O. G. (2016). Determination of aquifer parameters using geoelectrical sounding and pumping test data in Khanewal District, Pakistan. Open Geosciences, 8(1), 630-638. https://doi.org/10.1515/geo-2016-0071
  • Ulugergerli, E. U. (2017). Marine effects on vertical electrical soundings along shorelines. Turkish Journal of Earth Sciences, 26(1), 57-72.https://doi.org/10.3906/yer-1610-10
  • Adagunodo, T. A., Adeniji, A. A., Erinle, A. V., Akinwumi, S. A., Adewoyin, O. O., Joel, E. S., & Kayode, O. T. (2017). Geophysical investigation into the integrity of a reclaimed open dumpsite for civil engineering purpose. Interciencia Journal, 42(11), 324-339.
  • Sandeep, K., Athira, A. S., Arshak, A. A., Reshma, K. V., Aravind, G. H., & Reethu, M. (2023). Geoelectrical and hydrochemical characteristics of a shallow lateritic aquifer in southwestern India. Geosystems and Geoenvironment, 2(2), 100147. https://doi.org/10.1016/j.geogeo.2022.100147
  • Basheer, A. A., Selim, E. I., Ahmed, A., & Kotb, A. (2024). Evaluation of groundwater resources in the Qeft Area of Egypt: A geophysical and geochemical perspective. Sustainability, 16(11), 4815. https://doi.org/10.3390/su16114815
  • Bobachev, C. (2002). IPI2Win: A windows software for an automatic interpretation of resistivity sounding data. Type (Doctoral dissertation, Thesis, Moscow State University, Moscow, Russia).
  • Worthington, P. F. (1977). Geophysical investigations of groundwater resources in the Kalahari Basin. Geophysics, 42(4), 838-849. https://doi.org/10.1190/1.1440751
  • Maillet, R. (1947). The fundamental equations of electrical prospecting. Geophysics, 12(4), 529-556. https://doi.org/10.1190/1.1437342
  • Zohdy, A. A., Eaton, G. P., & Mabey, D. R. (1980). Application of surface geophysics to ground-water investigations. US Department of the Interior, Geological Survey.
  • Shah, S. H. I. A., Jianguo, Y., Jahangir, Z., Tariq, A., & Aslam, B. (2022). Integrated geophysical technique for groundwater salinity delineation, an approach to agriculture sustainability for Nankana Sahib Area, Pakistan. Geomatics, Natural Hazards and Risk, 13(1), 1043-1064. https://doi.org/10.1080/19475705.2022.2063077
  • Mahmud, S., Hamza, S., Irfan, M., Huda, S. N. U., Burke, F., & Qadir, A. (2022). Investigation of groundwater resources using electrical resistivity sounding and Dar Zarrouk parameters for Uthal Balochistan, Pakistan. Groundwater for sustainable development, 17, 100738. https://doi.org/10.1016/j.gsd.2022.100738
  • Batayneh, A. T. (2013). The estimation and significance of Dar-Zarrouk parameters in the exploration of quality affecting the Gulf of Aqaba coastal aquifer systems. Journal of Coastal Conservation, 17(3), 623-635.https://doi.org/10.1007/s11852-013-0261-4
  • Alarifi, S. S., Abdelrahman, K., & Hazaea, B. Y. (2022). Near-surface groundwater exploration using the geoelectrical resistivity method: A case study of Wadi Nisah, Riyadh, Saudi Arabia. Journal of King Saud University-Science, 34(6), 102207. https://doi.org/10.1016/j.jksus.2022.102207
  • Adesola, G. O., Gwavava, O., & Liu, K. (2023). Hydrological evaluation of the groundwater potential in the fractured karoo aquifer using magnetic and electrical resistivity methods: Case study of the Balfour formation, Alice, South Africa. International Journal of Geophysics, 2023(1), 1891759. https://doi.org/10.1155/2023/1891759

Year 2026, Volume: 13 Issue: 1 , 29 - 41 , 31.03.2026
https://doi.org/10.17350/HJSE19030000370
https://izlik.org/JA24SZ56PT

Abstract

Project Number

-

References

  • Azimi, S., Azhdary Moghaddam, M., & Hashemi Monfared, S. A. (2018). Spatial assessment of the potential of groundwater quality using fuzzy AHP in GIS. Arabian journal of geosciences, 11(7), 142. https://doi.org/10.1007/s12517-018-3484-8
  • Kumar, M., Singh, P., & Singh, P. (2022). Integrating GIS and remote sensing for delineation of groundwater potential zones in Bundelkhand Region, India. The Egyptian Journal of Remote Sensing and Space Science, 25(2), 387-404. https://doi.org/10.1016/j.ejrs.2022.03.003
  • Abdelrahman, K., Hazaea, S. A., Hazaea, B. Y., Abioui, M., & Al-Awah, H. (2023). Groundwater potentiality in hard-rock terrain of southern Saudi Arabia using electrical resistivity tomography approach. Journal of King Saud University-Science, 35(9), 102928. https://doi.org/10.1016/j.jksus.2023.102928
  • Alarifi, S. S., Abdelrahman, K., & Hazaea, B. Y. (2022). Depicting of groundwater potential in hard rocks of southwestern Saudi Arabia using the vertical electrical sounding approach. Journal of King Saud University-Science, 34(7), 102221.https://doi.org/10.1016/j.jksus.2022.102221
  • Arora, T., Kumar, S., Khan, R., Jalander, D., & Ahmed, S. (2023). Electrical imaging to decode the potential aquifer locations for water security in semiarid Niger, Africa. Geosystems and Geoenvironment, 2(2), 100072. https://doi.org/10.1016/j.geogeo.2022.100072
  • Zarif, F., Isawi, H., Elshenawy, A., & Eissa, M. (2021). Coupled geophysical and geochemical approach to detect the factors affecting the groundwater salinity in coastal aquifer at the area between Ras Sudr and Ras Matarma area, South Sinai, Egypt. Groundwater for Sustainable Development, 15, 100662. https://doi.org/10.1016/j.gsd.2021.100662
  • Raju, N. J., & Reddy, T. V. K. (1998). Fracture pattern and electrical resistivity studies for groundwater exploration. Environmental Geology, 34(2), 175-182. https://doi.org/10.1007/s002540050269
  • Yusuf, M. A., & Abiye, T. A. (2019). Risks of groundwater pollution in the coastal areas of Lagos, southwestern Nigeria. Groundwater for Sustainable Development, 9, 100222. https://doi.org/10.1016/j.gsd.2019.100222
  • Zarif, F., Barseem, M., Elshenawy, A., & Ulugergerli, E. U. (2024). 2D nonlinear inversion of DC resistivity measurements, a case study; southeastern part of Ras El Dabaa, Northwestern coast, Egypt. Environmental Earth Sciences, 83(21), 599. https://doi.org/10.1007/s12665-024-11896-5
  • Genedi, M. A., & Ahmed, M. A. (2024). Salinity distribution in agricultural land by geophysical, hydrochemical and geostatistical approaches: a pilot area located in Qelabshowah–Belqas, East Nile Delta region, Egypt. Environmental Earth Sciences, 83(9), 269. https://doi.org/10.1007/s12665-024-11570-w
  • Abdulaziz, A. M., Faid, A. M., Abdulaziz, M., & Faid, A. M. (2017). Aquifer Characterization and Groundwater Potential Using Integrated Geoelectric Sounding and Geoinformatics in West Maghagha Area, Minia Governorate, Egypt. Journal of Geology, 7(11), 1625-1643. https://doi.org/10.4236/ojg.2017.711109
  • Akingboye, A. S., Bery, A. A., Kayode, J. S., Ogunyele, A. C., Adeola, A. O., Omojola, O. O., & Adesida, A. S. (2023). Groundwater-yielding capacity, water–rock interaction, and vulnerability assessment of typical gneissic hydrogeologic units using geoelectrohydraulic method. Acta Geophysica, 71(2), 697-721. https://doi.org/10.1007/s11600-022-00930-4
  • Van Dam, J. C., & Meulenkamp, J. J. (1967). Some results of the geo‐electrical resistivity method in ground water investigations in the Netherlands. Geophysical Prospecting, 15(1), 92-115. https://doi.org/10.1111/j.1365-2478.1967.tb01775.x
  • De Breuck, W., & De Moor, G. (1969). The water-table aquifer in the eastern coastal area of Belgium. Hydrological Sciences Journal, 14(3), 137-155. https://doi.org/10.1080/02626666909493739
  • Zohdy, A. A. (1989). A new method for the automatic interpretation of Schlumberger and Wenner sounding curves. Geophysics, 54(2), 245-253. https://doi.org/10.1190/1.1442648
  • Batayneh, A. T. (2006). Use of electrical resistivity methods for detecting subsurface fresh and saline water and delineating their interfacial configuration: a case study of the eastern Dead Sea coastal aquifers, Jordan. Hydrogeology Journal, 14(7), 1277-1283. https://doi.org/10.1007/s10040-006-0034-3
  • Ekinci, Y. L., & Demirci, A. (2008). A damped least-squares inversion program for the interpretation of Schlumberger sounding curves. Journal of Applied Sciences, 8(22), 4070-4078.
  • Tizro, A. T., Voudouris, K. S., Salehzade, M., & Mashayekhi, H. (2010). Hydrogeological framework and estimation of aquifer hydraulic parameters using geoelectrical data: a case study from West Iran. Hydrogeology Journal, 18(4), 917-929. https://doi.org/10.1007/s10040-010-0580-6
  • Kumar, D., Rai, S. N., Thiagarajan, S., & Kumari, Y. R. (2014). Evaluation of heterogeneous aquifers in hard rocks from resistivity sounding data in parts of Kalmeshwar taluk of Nagpur district, India. Current Science, 1137-1145. https://www.jstor.org/stable/24105627
  • Kasidi, S. (2017). Groundwater Exploration Using Electrical Resistivity Method A Case Study In Federal Capital Teritory (FCT) Abuja. Nigeria. International Journal of Engineering and Applied Sciences, 4(10), 257370.
  • Hasan, M., Shang, Y., Jin, W., Shao, P., Yi, X., & Akhter, G. (2020). Geophysical assessment of seawater intrusion into coastal aquifers of bela plain, Pakistan. Water, 12(12), 3408. https://doi.org/10.3390/w12123408
  • de Almeida, A., Maciel, D. F., Sousa, K. F., Nascimento, C. T. C., & Koide, S. (2021). Vertical electrical sounding (VES) for estimation of hydraulic parameters in the porous aquifer. Water, 13(2), 170.https://doi.org/10.3390/w13020170
  • Gamal, G., Hassan, T. M., Gaber, A., & Abdelfattah, M. (2023). Groundwater quality assessment along the West of New Damietta Coastal City of Egypt using an integrated geophysical and hydrochemical approaches. Environmental Earth Sciences, 82(4), 107. https://doi.org/10.1007/s12665-023-10762-0
  • Mohammed, M. A., Szabo, N. P., & Szűcs, P. (2023). Exploring hydrogeological parameters by integration of geophysical and hydrogeological methods in northern Khartoum state, Sudan. Groundwater for Sustainable Development, 20, 100891.https://doi.org/10.1016/j.gsd.2022.100891
  • Musa, K. O., Obasi, I. A., Auduson, A. E., Jatto, S. S., Akudo, E. O., Akpah, F., & Jimoh, J. B. (2023). Integrating geoelectrical and borehole data in the characterization of basement-rock aquifers in the Lokoja area, northcentral Nigeria. Geosystems and Geoenvironment, 2(4), 100217.https://doi.org/10.1016/j.geogeo.2023.100217
  • Moghaddasi H, Moghaddasi M. (2023). Geoelectrical studies of west aquifer of Mashhad for study and delineation of the location of drinking wells for the emergency drinking water supply plan in Mashhad. Tehran (Iran): Jafab Kavosh Consulting Engineers Co. (Translated from Persian).
  • Purlatifi A. (2001). Tuorkaba Report. Tehran (Iran): Ministry of Mines and Iron, Earth Science and Underground Resources Research Organisation (Geological Survey of Iran).
  • Akhter, G., & Hasan, M. J. O. G. (2016). Determination of aquifer parameters using geoelectrical sounding and pumping test data in Khanewal District, Pakistan. Open Geosciences, 8(1), 630-638. https://doi.org/10.1515/geo-2016-0071
  • Ulugergerli, E. U. (2017). Marine effects on vertical electrical soundings along shorelines. Turkish Journal of Earth Sciences, 26(1), 57-72.https://doi.org/10.3906/yer-1610-10
  • Adagunodo, T. A., Adeniji, A. A., Erinle, A. V., Akinwumi, S. A., Adewoyin, O. O., Joel, E. S., & Kayode, O. T. (2017). Geophysical investigation into the integrity of a reclaimed open dumpsite for civil engineering purpose. Interciencia Journal, 42(11), 324-339.
  • Sandeep, K., Athira, A. S., Arshak, A. A., Reshma, K. V., Aravind, G. H., & Reethu, M. (2023). Geoelectrical and hydrochemical characteristics of a shallow lateritic aquifer in southwestern India. Geosystems and Geoenvironment, 2(2), 100147. https://doi.org/10.1016/j.geogeo.2022.100147
  • Basheer, A. A., Selim, E. I., Ahmed, A., & Kotb, A. (2024). Evaluation of groundwater resources in the Qeft Area of Egypt: A geophysical and geochemical perspective. Sustainability, 16(11), 4815. https://doi.org/10.3390/su16114815
  • Bobachev, C. (2002). IPI2Win: A windows software for an automatic interpretation of resistivity sounding data. Type (Doctoral dissertation, Thesis, Moscow State University, Moscow, Russia).
  • Worthington, P. F. (1977). Geophysical investigations of groundwater resources in the Kalahari Basin. Geophysics, 42(4), 838-849. https://doi.org/10.1190/1.1440751
  • Maillet, R. (1947). The fundamental equations of electrical prospecting. Geophysics, 12(4), 529-556. https://doi.org/10.1190/1.1437342
  • Zohdy, A. A., Eaton, G. P., & Mabey, D. R. (1980). Application of surface geophysics to ground-water investigations. US Department of the Interior, Geological Survey.
  • Shah, S. H. I. A., Jianguo, Y., Jahangir, Z., Tariq, A., & Aslam, B. (2022). Integrated geophysical technique for groundwater salinity delineation, an approach to agriculture sustainability for Nankana Sahib Area, Pakistan. Geomatics, Natural Hazards and Risk, 13(1), 1043-1064. https://doi.org/10.1080/19475705.2022.2063077
  • Mahmud, S., Hamza, S., Irfan, M., Huda, S. N. U., Burke, F., & Qadir, A. (2022). Investigation of groundwater resources using electrical resistivity sounding and Dar Zarrouk parameters for Uthal Balochistan, Pakistan. Groundwater for sustainable development, 17, 100738. https://doi.org/10.1016/j.gsd.2022.100738
  • Batayneh, A. T. (2013). The estimation and significance of Dar-Zarrouk parameters in the exploration of quality affecting the Gulf of Aqaba coastal aquifer systems. Journal of Coastal Conservation, 17(3), 623-635.https://doi.org/10.1007/s11852-013-0261-4
  • Alarifi, S. S., Abdelrahman, K., & Hazaea, B. Y. (2022). Near-surface groundwater exploration using the geoelectrical resistivity method: A case study of Wadi Nisah, Riyadh, Saudi Arabia. Journal of King Saud University-Science, 34(6), 102207. https://doi.org/10.1016/j.jksus.2022.102207
  • Adesola, G. O., Gwavava, O., & Liu, K. (2023). Hydrological evaluation of the groundwater potential in the fractured karoo aquifer using magnetic and electrical resistivity methods: Case study of the Balfour formation, Alice, South Africa. International Journal of Geophysics, 2023(1), 1891759. https://doi.org/10.1155/2023/1891759
There are 41 citations in total.

Details

Primary Language English
Subjects Hydrogeology
Journal Section Research Article
Authors

Zöhre Baharlu 0009-0007-6434-1065

Project Number -
Submission Date June 24, 2025
Acceptance Date January 26, 2026
Publication Date March 31, 2026
DOI https://doi.org/10.17350/HJSE19030000370
IZ https://izlik.org/JA24SZ56PT
Published in Issue Year 2026 Volume: 13 Issue: 1

Cite

Vancouver 1.Zöhre Baharlu. Groundwater Exploration Using the Vertical Electrical Sounding at Semi-Arid Region; West of Rezevi Khorasan, İran. Hittite J Sci Eng. 2026 Mar. 1;13(1):29-41. doi:10.17350/HJSE19030000370

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