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Hydrogeochemistry, Elemental Flux, and Quality Assessment of Mine Water in the Pootkee-Balihari Mining Area, Jharia Coalfield, India

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Abstract

Ninety nine mine water discharge samples were collected and analyzed for pH, electrical conductivity (EC), major cations, anions, and trace metals in the Pootkee-Balihari coal mining area of the Jharia coalfield. The mines of the area annually discharge 34.80 × 106 m3 of mine water and 39,099 t of solute loads. The pH of the analyzed mine waters ranged from 6.97 to 8.62. EC values ranged from 711 μS cm−1 to 1862 μS cm−1, and reflect variations in lithology, geochemical processes, and hydrological regimes in the mines. The cation and anion chemistry indicate the general ionic abundance as: Mg2+ > Ca2+ > Na+ > K+ and HCO3  > SO4 2− > Cl > NO3  > F, respectively. Elevated SO4 2− concentrations in the Gopalichuck, Kendwadih, and Kachhi-Balihari mine waters are attributed to pyrite weathering. The water quality assessment indicated that TDS, hardness, Mg2+, and SO4 2− are the major parameters of concern in the study area. Except for Fe, all of the measured metals in the mine water were well within the levels recommended for drinking water. With only a few exceptions, the mine water is of good to permissible quality and suitable for irrigation.

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References

  • Agrawal V, Jagetia M (1997) Hydrogeochemical assessment of groundwater quality in Udaipur city, Rajasthan, India. Proc. National Conf on Dimension of Environmental Stress in India, Univ of Baroda, India, pp 151–154

    Google Scholar 

  • APHA.AWWA.WPCF (1995) Standard methods for the examination of water and waste water, 19th edit, American Public Health Assoc. Washington DC, USA

    Google Scholar 

  • Appelo CAJ, Postma D (1993) Geochemistry, groundwater and pollution. AA Balkema Publ, Rotterdam, the Netherlands

    Google Scholar 

  • Ayers RS, Westcot DW (1985) Water quality for irrigation. FAO Irrigation and Drainage Paper #20, Rev 1. FAO, Rome, Italy

    Google Scholar 

  • Berner EK, Berner RA (1987) The global water cycle: geochemistry and environment. Prentice-Hall, Englewood Cliffs, NJ, USA

    Google Scholar 

  • BIS (1991) Indian Standards Institution—Indian standard specification for drinking water. IS: 10500

  • Carroll D (1962) Rainwater as a chemical agent of geological processes—a review. USGS water supply paper 1535-G, Washington DC, USA, 18 pp

  • Chandra D (1992) Mineral resources in India 5: Jharia coalfields. Geological Soc of India, Bangalore, India

    Google Scholar 

  • Choubey VD (1991) Hydrological and environmental impact of coal mining, Jharia coalfield, India. Environ Geol 17:185–194

    Google Scholar 

  • Choubey VD, Sankaranarayana I (1990) Hydrogeology of Jharia coalfield, India. Jour Geol Soc India 36:36–45

    Google Scholar 

  • Durvey VS, Sharma LL, Saini VP, Sharma BK (1991) Handbook on the methodology of water quality assessment. Rajasthan Agriculture Univ, Bikaner, India

    Google Scholar 

  • Eaton FM (1950) Significance of carbonates in irrigation waters. Soil Sci 39:123–133

    Article  Google Scholar 

  • Ghose NC (1983) Geology, tectonics and evolution of the Chotanagpur granite-gneiss complex, eastern India. Recent Res Geol 10:211–247

    Google Scholar 

  • Gladney ES, Burns CE, Rodandts I (1983) Compilation of elemental concentration in eleven United States Geological Survey rock standards. Geostand Newslet 8:3–226

    Article  Google Scholar 

  • Gupta DC (1999) Environmental aspects of selected trace elements associated with coal and natural waters of Pench valley coalfield of India and their impact on human health. Inter Journ Coal Geol 40:133–149

    Article  Google Scholar 

  • Hounslow AW (1995) Water Quality Data: Analysis and Interpretation. CRC Lewis Publ, Boca Raton, FL, USA

    Google Scholar 

  • Karanth KR (1989) Ground water assessment development and management. Tata McGraw Hill Publ, New Delhi, India

    Google Scholar 

  • Khan R, Israili SH, Ahmad H, Mohan A (2005) Heavy metal pollution assessment in surface water bodies and its suitability for irrigation around the Nayevli lignite mines and associated industrial complex, Tamil Nadu, India. Mine Water Environ 24:155–161

    Article  Google Scholar 

  • Lowson RT, Reedy BJ, Beattie JK (1993) The chemistry of acid mine drainage. Chem Aust 60:389–391

    Google Scholar 

  • Pandey SK, Singh AK, Hasnain SI (2001) Hydrochemical characteristics of meltwater draining from Pindari glacier, Kumaon Himalaya. Jour Geol Soc India 57:519–527

    Google Scholar 

  • Piper (1944) A graphical procedure in the geochemical interpretation of water analysis. Am Geophys Union Trans 25:914–928

    Google Scholar 

  • Pulles W, Howie D, Otto D, Easton J (1995) A mine water treatment and management in South Africa Water Research Commission Report No. 7780/96, Pretoria, South Africa

  • Raghunath HM (1987) Ground Water. Wiley Eastern Ltd, Delhi, India

    Google Scholar 

  • Richards LA (1954) Diagnosis and improvement of saline and alkali soils. US Dept Agriculture Handbook #60, Washington DC, USA

    Google Scholar 

  • Sarkar BC, Mahanata BN, Saikia K, Paul PR, Singh G (2007) Geo-environmental quality assessment in Jharia coalfield, India, using multivariate statistics and geographic information system. Environ Geol 51:1177–1196

    Article  Google Scholar 

  • Sawyer CN, McCarty PL (1967) Chemistry of Sanitary Engineers, 2nd edn. McGraw Hill, New York City, NY, USA

    Google Scholar 

  • Sharma NL, Ram KSV (1966) Introduction to the geology of coal & Indian coalfields. Orient Publ, Jaipur, India

    Google Scholar 

  • Singh G (1990) Status of water quality in a coal mining environment–a case study in the Jharia coalfield. Jharkhand (India) J Ind Poll Cont 6:67–76

    Google Scholar 

  • Singh G (1994) Augmentation of underground pumped out water for potable purpose from coal mines of Jharia coalfield. Proceedings of 5th International Mine Water Congress, vol 2, Nottingham, UK, pp 679–689

  • Singh G (1998) Impact of coal mining on mine water quality. Int J Mine Water 7:45–59

    Google Scholar 

  • Singh AK, Hasnain SI (2002) Aspects of weathering and solute acquisition processes controlling chemistry of sub-alpine proglacial streams of Garhwal Himalaya, India. Hydrol Proc 16:835–849

    Article  Google Scholar 

  • Singh AK, Mondal GC, Singh S, Singh PK, Singh TB, Tewary BK, Sinha A (2007) Aquatic geochemistry of Dhanbad district, coal city of India: source evaluation and quality assessment. J Geol Soc Ind 69:1088–1102

    Google Scholar 

  • Singh AK, Mahato M, Neogi B, Singh KK (2010) Quality assessment of mine water in the Raniganj coalfield area, India. Mine Water Environ 29:248–262

    Article  Google Scholar 

  • Thompson JG (1980) Acid mine waters in South Africa and their amelioration. Water SA 6:130–134

    Google Scholar 

  • Tiwari T, Manzoor A (1988) Pollution of Subarnarekha river near Jamsedpur and the suitability of its for irrigation. Ind Jour Env Prot 8:494–497

    Google Scholar 

  • Tiwary RK (2001) Environmental impact of coal mining on water regime and its management. Water Air Soil Pollut 132:185–199

    Article  Google Scholar 

  • WHO (1997) Guidelines for drinking-water quality. Vol 1, Recommendations. World Health Organisation, Geneva, Switzerland, pp 1–4

    Google Scholar 

  • Wilcox LV (1955) Classification and use of irrigation waters. US Dept of Agriculture Circular 969, Washington DC, USA

    Google Scholar 

  • Younger PL, Wolkersdorfer C (2004) Mining impacts on the fresh water environments: technical and managerial guidelines for catchment scale management. Mine Water Environ 23:S2–S80

    Article  Google Scholar 

  • Younger P, Banwart SA, Hedin RS (2002) Mine water–hydrology, pollution, remediation. Kluwer Acad Publ, Dordrecht, The Netherlands

    Google Scholar 

Download references

Acknowledgments

The authors are grateful to Dr. A. Sinha, Director, Central Institute of Mining and Fuel Research, for his kind support and permission to publish this paper. Financial support by the Council of Scientific & Industrial Research (CSIR), New Delhi under its 11th Five Year Plan Project is gratefully acknowledged. We thank Dr. B. K. Tewary and other laboratory colleagues for their support and encouragement. Site support extended by BCCL authority is gratefully acknowledged.

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Correspondence to Abhay Kumar Singh.

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Singh, A.K., Mahato, M.K., Neogi, B. et al. Hydrogeochemistry, Elemental Flux, and Quality Assessment of Mine Water in the Pootkee-Balihari Mining Area, Jharia Coalfield, India. Mine Water Environ 30, 197–207 (2011). https://doi.org/10.1007/s10230-011-0143-7

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