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Geochemical Survey and Estimation of Baseline Concentrations of Major and Trace Elements in Stream Water, Uttar Pradesh, India: Implication for Environmental Studies

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Journal of the Geological Society of India

Abstract

Stream water plays an important role in the development of habitats. It is one of the important sources of water used for drinking and irrigation in the region. Before using, it is necessary to test the quality of all types of surface water available for various use. A geochemical study of stream water has been conducted in parts of Pratapgarh, Raebareli, and Allahabad districts of Uttar Pradesh to assess its suitability for domestic purposes and establish the baseline concentration of major ions, trace and REEs. 20 samples of stream water from different locations of 1st or 2nd order streams were collected during post-monsoon period, from 18th to 31st October 2021. Different hydrochemical parameters such as pH, electrical conductivity (EC), temperature, dissolved oxygen (DO), salinity, total dissolved solids (TDS), major cations and anions were analysed. In order to obtain maximum quality and purity of water, the stream water samples were analyzed by ICP-MS analytical method in the chemical lab for 47 trace elements including REEs contents. The obtained values of each parameter have been compared with the standard values recommended by BIS and WHO. The value of each element except uranium has been found to be within the desirable and permissible limits prescribed by BIS (2012) and WHO (2006). Selenium and arsenic have been found to be marginally exceed the permissible limits. The pH values of all stream waters in the study area range from 7.14 to 8.86 with an average value of 7.86 indicating an alkaline nature of stream water. The concentration of uranium in stream water varied from 1.5 ppb to 48.67 ppb with a mean value of 7.9 ppb. It is observed that wherever concentration of uranium in the samples increased, the pH as well as the bicarbonate level increased accordingly. Correlation coefficient revealed that uranium is strongly correlated with bicarbonate (r=0.67), moderately with sodium (r=6.1), and low positively correlated with the concentration of pH (r=0.34), EC (r=0.52), and salinity (r=0.52), indicates the same origin. Water quality index (WQI) of water was determined for suitability of drinking purpose, revealed that 65% water samples fall in excellent category and 30% water samples fall in good category while only 5% water sample are in poor category. Trilinear plot of sample shows that most of the stream water samples are Ca-Mg-HCO3 type.

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References

  • Armand, R., Cherubini, C., Tuduri, J., Pastore, N., Pourret, O. (2015) Rare earth elements in French stream waters - Revisiting the geochemical continental cycle using FOREGS dataset. Jour. Geochem. Explor., 157: 132–142. doi: https://doi.org/10.1016/J.GEXPLO.2015.06.006.

    Article  Google Scholar 

  • Andrew, H.M., Jean M. Morrison. Richard, B.W., Christopher, T. Mills (2020) Using stream-side groundwater discharge for geochemical exploration in mountainous terrain, Jour. Geochem. Explor., v.209, 106415. doi:https://doi.org/10.1016/j.gexplo.2019.106415.

    Article  Google Scholar 

  • Brion, G., Brye, K., Haggard, B., West, C., Brahana, J. (2011) Land-use effects on water quality of a first-order stream in the Ozark Highlands, mid-southern United States. River Res. Appl., v.27, pp.772–790. doi:https://doi.org/10.1002/rra.1394.

    Article  Google Scholar 

  • Bricker, O.P. (1992) Geochemistry of Small Drainage Basins: Massanutten Headwater Streams - Mill Run and Shelter Run, V.M. Goldschmidt Conference; Field Trip May 8 1992. U.S. Geological Survey, Reston, VA.

    Google Scholar 

  • Bricker, O.P., Rice, K.C. (1989) Acidic deposition to streams, a geology based method predicts their sensitivity. Environ. Sci. Technol., v.23, pp.379–385.

    Article  Google Scholar 

  • Briggs, P.H. (2002a) The determination of twenty-seven elements in aqueous samples by inductively coupled plasma-atomic emission spectrometry, chap. In: Taggart, J.E., Jr., (Ed.), Analytical methods for chemical analysis of geologic and other materials. U.S. Geological Survey Open-File Report 02- 223, pp.F1–F11.

  • Bhartiya, S.P. (1992) Quaternary geology and geomorphology of a part of Ganga basin in Raebareli, Pratapgarh, Fatehpur and Allahabad districts, Uttar Pradesh, Geological Survey of India, Northern Region, Lucknow. Geol. Surv. India, Unpub. report.

  • BIS (2012) Indian Standard drinking water—specification (Second Revision). IS 10500: 2012. Bureau of Indian Standards, New Delhi, India.

    Google Scholar 

  • Davis, N.S. (1964) Silica in streams and groundwater. Amer. Jour. Sci., v.262, pp.870–891

    Article  Google Scholar 

  • Domenico, P.A. (1972) Concepts and models in groundwater hydrology. McGraw-Hill, New York.

    Google Scholar 

  • De Vos, W., Tarvainen, T. et al., (2006) Geochemical Atlas of Europe. Part 2 - Interpretation of geochemical maps, Additional Tables, Figures, Maps and related publications. Geological Survey of Finland, Espoo, 692p. http://www.gtk.fi/publ/foregsatlas/.

    Google Scholar 

  • Darnley, A.G. (1997) A global geochemical reference network: the foundation for geochemical baselines. In: K. Marsina & K. Vrana (Eds.), Environmental Geochemical Baseline Mapping in Europe. Elsevier.

  • Elliott, K.S., John, W.D. et al (2020) Release of geogenic uranium and arsenic results in water-quality impacts in a subarctic permafrost region of granitic and metamorphic geology. Jour. Geochem. Explor., v.217, 106607.

    Article  Google Scholar 

  • Freeze, R.A., Cherry, J.A. (1979) Groundwater, Prenyice-Hall, New Jersey

    Google Scholar 

  • Guler, C. and Thyne, G. D. (2004) Hydrologic and geologic factors controlling surface and groundwater chemistry in Indian Wells-Owens Valley area, southeastern California, USA. Jour. Hydrol., v.285, pp.177–198.

    Article  Google Scholar 

  • García, M.G., Lecomte, K.L., Pasquini, A.I., Formica, S.M., Depetris, P.J. (2007) Sources of dissolved REE in mountainous streams draining granitic rocks, Sierras Pampeanas (Córdoba, Argentina). Geochim. Cosmochim. Acta, v.71(22), pp.5355–5368. doi: https://doi.org/10.1016/j.gca.2007.09.017.

    Article  Google Scholar 

  • Hem, J.D. (1985) Study and interpretation of the chemical characteristics of natural waters. Third edition. USGS Water- Supply Paper, v.2254, 263p.

  • Herpe, Y.V., Troch, P.A. (2000) Spatial and temporal variations in surface water nitrate concentration in a mixed land use catchment under humid temperate climatic conditions. Hydrol. Process., v.14, pp.2439–2455.

    Article  Google Scholar 

  • Hutchins, M.G., Smith, B., Rawlins, B.G., Lister, T.R. (1999) Temporal and spatial variability of stream waters in Wales the Welsh borders and part of the West Midlands, UK-1. Major ion concentrations. Water Res., v.33, pp.3479–3491.

    Article  Google Scholar 

  • Hornung, M., Stevens, P.A., Reynolds, B. (1987a) The effects of forestry on soils, soil water and surface water chemistry. In: Good, J.E.G. (Ed.), Environmental Aspects of Plantation Forestry in Wales. NERC/ITE, Grange-over-Sands, 25–36 (ITE Symposium, 22).

  • Hornung, M., Le Grice, S., Brown, N. and Norris, D. (1990b) The role of geology and soils in controlling surface water acidity in Wales. In: R.W. Edwards, A.S. Gee and J.H. Stoner (Eds.), Acid Waters in Wales, Kluwer Academic Publ., Dordrecht, 337p.

    Google Scholar 

  • Hirose, T. and Kuramoto, N. (1981) Stream water quality as influenced by land use patterns in the Kakioka Basin, Japan. Environmental Quality. v10, 836–848. doi:https://doi.org/10.2134/jeq1981.00472425001000020012x

    Article  Google Scholar 

  • Johnson, C.C., Breward, N., Ander, E.L., Ault, L. (2005) G-BASE: baseline geochemical mapping of Great Britain and Northern Ireland. Geochem. Explor. Environ. Analysis, v.5, pp.347–357. doi:https://doi.org/10.1144/1467-7873/05-070.

    Article  Google Scholar 

  • Kukrer, S., Mutlu, E. (2019) Assessment of surface water quality using water quality index and multivariate statistical analyses in Sarayduzu Dam Lake, Turkey. Environ. Monit. Assess., v.191, pp.71. doi:https://doi.org/10.1007/s10661-019-7197-6.

    Article  Google Scholar 

  • K.Y. Kim, C.-M. Chon, K.-H. Park, Y.-S. Park, N.-C. Woo. (2008) Multi-depth monitoring of electrical conductivity and temperature of groundwater at a multilayered coastal aquifer: Jeju Island Korea. Hydrol. Process., v.22, pp.3724–3733

    Article  Google Scholar 

  • Lark, R.M., Bearcock, J.M., Ander, E.L. (2016) How does temporal variation affect the value of stream water as a medium for regional geochemical survey? Jour. Geochem. Explor., v.169, pp.211–233.

    Article  Google Scholar 

  • Lamothe, P.J., Meier, A.L., Wilson, S.A. (2002) The determination of forty-four elements in aqueous samples in inductively coupled plasma-mass spectrometry, chap. In: Taggart, J.E., Jr., (Ed.), Analytical methods for chemical analysis of geologic and other materials: U.S. Geological Survey Open-File Report 02–223, pp.H1–H11.

  • Miller, W.R. (1999a) Geochemical baselines and maps showing acid-neutralizing capacity and potential release of total dissolved solids of stream and spring waters from different rock compositional types from mountainous watersheds in the Gunnison, Uncompahgre, and Grand Mesa National Forest, Colorado: U.S. Geological Survey Open-File Report 99–580, 107p.

  • Miller, W.R. (2001b) Geochemical baselines of stream and spring waters from areas underlain by Permian and Pennsylvanian rocks, including evaporites, and potential environmental damage in the Eagle Valley, Colorado: U.S. Geological Survey Open-File Report 01–362, 41p.

  • Nigam, A.C. (1994) Quaternary geology and geomorphology of part of Ganga basin in Allahabad, Hardoi, Lucknow, Pratapgarh, Raebareli and Unnao districts, Uttar Pradesh, Geological Survey of India, Northern Region, Lucknow. Geol. Surv. India, Unpub. Report.

  • Neal, C. Hill. T, Alexander, S., Reynolds, B., Hills, S., Dixon, A.J., Harrow, M., Neal, M., Smith, C.J. (1997) Stream water quality in acid sensitive UK upland areas; an example of potential water quality remediation based on ground water manipulation. Hydrol. Earth Syst. Sci., v. 1, pp.185–196.

    Article  Google Scholar 

  • Nobrega, R.L.B., Guzha A.C., Lamparter, G., Amorim, R.S.S., Couto, E.G., Hughes H.J., Jungkunst, H.F., Gerold, G. (2018) Impacts of land-use and land-cover change on stream hydrochemistry in the Cerrado and Amazon biomes. Sci. Total Environ., v.635, pp.259–274. doi:https://doi.org/10.1016/j.scitotenv.2018.03.356.

    Article  Google Scholar 

  • Plant, J.A., Klaver, G., Locutura, J., Salminen, R., Vrana, K., Fordyce, F.M. (1997) The forum of European geological surveys geochemistry task group inventory 1994–1996. Jour. Geochem. Explor., v.59, pp.123–146. doi:https://doi.org/10.1016/S0375-6742(97)00008-3.

    Article  Google Scholar 

  • Pearce, F.M. (1993) Seasonal variations of river water chemistry in former metalliferous mining areas of Wales. In: Abstracts, Society for Environmental Geochemistry and Health, SEGH European Conference 1993, Aberystwyth.

  • Piper, A.M. (1953) A graphic procedure in the geochemical interpretation of water analysis. USGS Ground Water Note No.12.

  • Pourret, O., Davranche, M., Gruau, G., Dia, A. (2007) Competition between humic acid and carbonates for rare earth elements complexation. Jour. Colloid. Interf. Sci., v.305(1), pp.25–31. doi: https://doi.org/10.1016/j.jcis.2006.09.020.

    Article  Google Scholar 

  • Reimann, C., Finne, T.E., Nordgulen, Saether, O.M., Arnoldussen, A.M., Banks, D. (2009) The influence of geology and land-use on inorganic stream water quality in the Oslo region, Norway. Appl. Geochem., v.24, pp.1862–1874.

    Article  Google Scholar 

  • Rhodes, A.L., Newton, R.M., Pufall, A. (2001) Influences of land use on water quality of diverse New England watersheds. Environ. Sci. Tech., v.35, pp.3640–3645.

    Article  Google Scholar 

  • Raychaudhary, S.P. (1963) Saline alkali soils of India, Morphology, genesis of some selected saline and alkali soils of Bihar, U.P. and Punjab, Indian Jour. Agric. Sci., v.33, pp.28–33.

    Google Scholar 

  • Salminen, R. et al. (2005) FOREGS Geochemical Atlas of Europe, Part 1: Background Information, methodology and maps. Geological survey of Finland, Espoo, 526 pp., http://weppi.gtk.fi/publ/foregsatlas/

    Google Scholar 

  • Silva, D.M., Camargo, P.B., McDowell, W.H., Vieira, I., Salomao M.S., Martinelli, L.A. (2012) Influence of land use changes on water chemistry in streams in the State of Sao Paulo, southeast Brazil. An Acad. Bras. Cienc., v.84, pp.919–930. doi: https://doi.org/10.1590/s0001-37652012000400007.PMID:23207700.

    Article  Google Scholar 

  • Sawyer, C.N. and McCarty, P.L. (1967) Chemistry for Sanitary Engineers. McGraw-Hill, New York.

    Google Scholar 

  • Simpson, P.R., Edmunds, W.M., Breward, N., Cook, J.M., Flight, D., Hall, G.E.M., Lister, T.R. (1993) Geochemical mapping of stream water for environmental studies and mineral exploration in the UK. Jour. Geochemical Explor., v.49, pp.63–88. doi:https://doi.org/10.1016/0375-6742(93)90039-O.

    Article  Google Scholar 

  • Simpson, P.R., Breward, N., Flight, D.M.A., Lister, T.R., Cook, J.M., Smith, B., Hall, G.E.M. (1996) High resolution regional hydrogeochemical baseline mapping of stream water of Wales, the Welsh Borders and West Midlands region. Appl. Geochem., v.11, pp.621–632. doi:https://doi.org/10.1016/S0883-2927(96)00001-7.

    Article  Google Scholar 

  • Singh, K.P., Malik, A., Mohan, D., Sinha, S. (2004) Multivariate statistical techniques for the evaluation of spatial and temporal variations in water quality of Gomti river (India)-a case study, Water Res., v.38, pp.3980–3992.

    Article  Google Scholar 

  • Thornton, G.J.P., Dise, N.B. (1998) The influence of catchment characteristics, agricultural activities and atmospheric deposition on the chemistry of small streams in the English Lake District. Sci. Total Environ., v.216, pp.63–75. doi:https://doi.org/10.1016/S0048-9697(98)00138-7.

    Article  Google Scholar 

  • Tiwari, A.K., Singh, A.K. (2014) Hydrogeochemical Investigation and Groundwater Quality Assessment of Pratapgarh District, Uttar Pradesh, Jour. Geol. Soc. India, v.83, pp.329–343. doi:https://doi.org/10.1007/s12594-014-0045-y.

    Article  Google Scholar 

  • Uddin, M.G., Nash, S., Olbert, A.I. (2021) A review of water quality index models and their use for assessing surface water quality. Ecol. Indic., v.122, Article 107218.

  • Venkatesharaju, K., Somashekar, R.K., Prakash, K.L. (2010) Study of Seasonal and Spatial Variation in Surface Water Quality of Cauvery River Stretch in Karnataka. African Jour. Ecol. Ecosyst., v.6(5). pp.001–009.

    Google Scholar 

  • Verplanck, P.L., Nordstrom, D.K., Taylor, H.E., and Kimball, B.A., (2004) Rare earth element partitioning between hydrous ferric oxides and acid mine water during iron oxidation: Appl. Geochem., v.19(8), pp.1339–1354. doi:https://doi.org/10.1016/j.apgeochem.2004.01.016.

    Google Scholar 

  • WHO (World Health Organization) (2008) Guidelines for Drinking-Water Quality vol 1 (recommendations, 3rd edn. WHO, Geneva), pp.303–444.

    Google Scholar 

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Kumar, H., Naim, N. & Ali, D. Geochemical Survey and Estimation of Baseline Concentrations of Major and Trace Elements in Stream Water, Uttar Pradesh, India: Implication for Environmental Studies. J Geol Soc India 99, 723–732 (2023). https://doi.org/10.1007/s12594-023-2372-3

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