Hydrogeochemical Evolution and Drinking Water Suitability Assessment of Groundwater in Semi-Arid Basaltic Terrain of Akkalkot Taluka, Maharashtra, India
Authors
Senior Geologist, Groundwater Surveys and Development Agency, Solapur, Maharashtra (India)
Assistant Geologist, Groundwater Surveys and Development Agency, Solapur, Maharashtra (India)
Article Information
DOI: 10.51244/IJRSI.2026.1305000253
Subject Category: Geology
Volume/Issue: 13/5 | Page No: 2871-2887
Publication Timeline
Submitted: 2026-05-24
Accepted: 2026-05-30
Published: 2026-06-12
Abstract
Groundwater is the principal source of drinking and irrigation water in the semi-arid Deccan basaltic terrain of Akkalkot taluka, Solapur district, Maharashtra. This study assesses the hydrogeochemical evolution, the geochemical processes governing groundwater composition, and the drinking-water suitability of the resource using 5,352 groundwater samples drawn from handpumps, dug wells and borewells over eight hydrological years (2016–17 to 2023–24). The water is neutral to slightly alkaline (mean pH 7.5) and predominantly hard to very hard (93% exceed 150 mg L⁻¹ as CaCO₃). Electrical conductivity (mean 1,532 µS cm⁻¹) and total dissolved solids (mean 989 mg L⁻¹) indicate moderate mineralization. Piper and Chadha diagrams reveal a mixed facies assemblage dominated by Ca–Mg–HCO₃ recharge water (33%) that evolves towards Na–HCO₃ and Na–Cl types. Gibbs plots, Na⁺/Cl⁻ ratios (>1 in 74% of samples) and negative chloro-alkaline indices (74%) identify silicate (plagioclase) weathering and cation exchange as the dominant controls, modified by evapoconcentration. Elevated nitrate (exceeding the 45 mg L⁻¹ limit in 29% of samples) reflects anthropogenic loading from both agricultural fertilizers and sanitation sources. The weighted-arithmetic water quality index rated 78% of samples as excellent–good; hardness, salinity and nitrate are the chief constraints on potability.
Keywords
Hydrogeochemistry; Deccan basalt; Piper diagram
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References
1. A.M. Piper (1944), A graphic procedure in the geochemical interpretation of water analyses, Transactions of the American Geophysical Union, Vol.25, No.6, pp.914–928. [Google Scholar] [Crossref]
2. APHA (2017), Standard Methods for the Examination of Water and Wastewater, 23rd ed., American Public Health Association, Washington DC. [Google Scholar] [Crossref]
3. BIS (2012), IS 10500:2012 Indian Standard Drinking Water – Specification (Second Revision), Bureau of Indian Standards, New Delhi, pp.1–11. [Google Scholar] [Crossref]
4. C.N. Sawyer, P.L. McCarty (1967), Chemistry for Sanitary Engineers, 2nd ed., McGraw-Hill, New York, pp.1–518. [Google Scholar] [Crossref]
5. CGWB (2013), Ground Water Information, Solapur District, Maharashtra, Central Ground Water Board, Ministry of Water Resources, Government of India, pp.1–22. [Google Scholar] [Crossref]
6. D. Marghade, D.B. Malpe, A.B. Zade (2012), Major ion chemistry of shallow groundwater of a fast growing city of Central India, Environmental Monitoring and Assessment, Vol.184, No.4, pp.2405–2418. [Google Scholar] [Crossref]
7. D.B. Panaskar, V.M. Wagh, A.A. Muley, S.V. Mukate, et al. (2016), Evaluating groundwater suitability for the domestic, irrigation and industrial purposes in Nanded Tehsil, Maharashtra, India, Modeling Earth Systems and Environment, Vol.2, No.74, pp.1–13. [Google Scholar] [Crossref]
8. D.K. Chadha (1999), A proposed new diagram for geochemical classification of natural waters and interpretation of chemical data, Hydrogeology Journal, Vol.7, No.5, pp.431–439. [Google Scholar] [Crossref]
9. F. Birajdar and M. Shaikh, "Groundwater exploration and assessment in arid and semi-arid regions of basaltic terrain of Solapur: Lessons learned and future prospects," Int. J. Innov. Sci. Res. Technol., pp. 2763-2776, 2024d, doi: 10.38124/ijisrt/IJISRT24APR2344. [Google Scholar] [Crossref]
10. F.M. Eaton (1950), Significance of carbonates in irrigation waters, Soil Science, Vol.69, No.2, pp.123–133. [Google Scholar] [Crossref]
11. H. Schoeller (1965), Qualitative evaluation of groundwater resources, in: Methods and Techniques of Groundwater Investigation and Development, UNESCO, Paris, pp.54–83. [Google Scholar] [Crossref]
12. J.D. Hem (1985), Study and Interpretation of the Chemical Characteristics of Natural Water, 3rd ed., U.S. Geological Survey Water-Supply Paper 2254, pp.1–263. [Google Scholar] [Crossref]
13. K.R. Karanth (1987), Ground Water Assessment, Development and Management, Tata McGraw-Hill, New Delhi, pp.1–720. [Google Scholar] [Crossref]
14. L.A. Richards (1954), Diagnosis and Improvement of Saline and Alkali Soils, USDA Agriculture Handbook No.60, U.S. Department of Agriculture, Washington DC, pp.1–160. [Google Scholar] [Crossref]
15. L.D. Doneen (1964), Notes on Water Quality in Agriculture, Water Science and Engineering Paper 4001, Department of Water Science and Engineering, University of California, Davis. [Google Scholar] [Crossref]
16. L.V. Wilcox (1955), Classification and Use of Irrigation Waters, USDA Circular No.969, U.S. Department of Agriculture, Washington DC, pp.1–19. [Google Scholar] [Crossref]
17. M. Shaikh and F. Birajdar, "Ensuring purity and health: A comprehensive study of water quality testing labs in Solapur district for community well-being," Int. J. Innov. Sci. Res. Technol., vol. 9, no. 1, pp. 271-281, 2024b, doi: 10.5281/zenodo.10622956. [Google Scholar] [Crossref]
18. M. Shaikh and F. Birajdar, "Groundwater and ecosystems: Understanding the critical interplay for sustainability and conservation," EPRA Int. J. Multidiscip. Res., vol. 10, no. 3, pp. 181-186, 2024, doi: 10.36713/epra16111. [Google Scholar] [Crossref]
19. M. Shaikh and F. Birajdar, "Groundwater and public health: Exploring the connections and challenges," Int. J. Innov. Sci. Res. Technol., vol. 9, no. 2, pp. 1351-1361, 2024a, doi: 10.5281/zenodo.10730864. [Google Scholar] [Crossref]
20. M. Shaikh and F. Birajdar, "Mapping of feasibility of groundwater for drinking water zones of Akkalkot taluk, Solapur, India using GIS techniques," Int. J. Sci. Res., vol. 4, no. 4, pp. 1709-1713, 2015, doi: 10.21275/15041507. [Google Scholar] [Crossref]
21. M. Vasanthavigar, K. Srinivasamoorthy, K. Vijayaragavan, et al. (2010), Application of water quality index for groundwater quality assessment: Thirumanimuttar sub-basin, Tamilnadu, India, Environmental Monitoring and Assessment, Vol.171, No.1–4, pp.595–609. [Google Scholar] [Crossref]
22. N. Adimalla, S. Venkatayogi (2018), Geochemical characterization and evaluation of groundwater suitability for domestic and agricultural utility in semi-arid region of Basara, Telangana State, South India, Applied Water Science, Vol.8, No.44, pp.1–14. [Google Scholar] [Crossref]
23. N. Subba Rao (2006), Seasonal variation of groundwater quality in a part of Guntur District, Andhra Pradesh, India, Environmental Geology, Vol.49, No.3, pp.413–429. [Google Scholar] [Crossref]
24. N.J. Pawar, G.M. Pondhe, S.F. Patil (1998), Groundwater pollution due to sugar-mill effluent, at Sonai, Maharashtra, India, Environmental Geology, Vol.34, No.2–3, pp.151–158. [Google Scholar] [Crossref]
25. P. Sahu, P.K. Sikdar (2008), Hydrochemical framework of the aquifer in and around East Kolkata Wetlands, West Bengal, India, Environmental Geology, Vol.55, No.4, pp.823–835. [Google Scholar] [Crossref]
26. P.K. Naik, A.K. Awasthi (2003), Groundwater resources assessment of the Koyna River basin, India, Hydrogeology Journal, Vol.11, No.5, pp.582–594. [Google Scholar] [Crossref]
27. R.J. Gibbs (1970), Mechanisms controlling world water chemistry, Science, Vol.170, No.3962, pp.1088–1090. [Google Scholar] [Crossref]
28. V.M. Wagh, D.B. Panaskar, S.V. Mukate, A.A. Muley, et al. (2019), Health risk assessment of heavy metal contamination in groundwater of Kadava River basin, Nashik, India, Modeling Earth Systems and Environment, Vol.5, No.4, pp.1–12. [Google Scholar] [Crossref]
29. W.P. Kelley (1940), Permissible composition and concentration of irrigation waters, Proceedings of the American Society of Civil Engineers, Vol.66, pp.607–613. [Google Scholar] [Crossref]
30. WHO (2017), Guidelines for Drinking-water Quality, 4th ed. incorporating the first addendum, World Health Organization, Geneva, pp.1–541. [Google Scholar] [Crossref]
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