AccScience Publishing / AJWEP / Volume 14 / Issue 4 / DOI: 10.3233/AJW-170038
RESEARCH ARTICLE

Assessment of Metallic Pollution along with Geochemical  Baseline of Soils at Barapukuria Open Coal Mine Area in  Dinajpur, Bangladesh

H.M. Zakir1* M.Y. Arafat1 M.M. Islam1
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1 Department of Agricultural Chemistry, Faculty of Agriculture Agricultural University Mymensingh – 2202, Bangladesh
AJWEP 2017, 14(4), 77–88; https://doi.org/10.3233/AJW-170038
© Invalid date by the Author(s). This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution -Noncommercial 4.0 International License (CC-by the license) ( https://creativecommons.org/licenses/by-nc/4.0/ )
Abstract

A total 42 (5 + 37) soil samples surrounding 4 km2 of Barapukuria open coal mine area were collected  to determine the geochemical baseline and concentrations of different metals after digestion with aqua regia.  The mean total concentration and geochemical baseline values of Cu, Zn, Pb, Cd and Cr in soil samples were  28.43, 44.83, 20.94, 0.19 and 55.79 µg g–1, and 20.40, 32.80, 20.47, 0.12 and 42.69 µg g–1, respectively. Out  of 37 sampling stations, 92-100% locations had the values higher for Cu, Zn, Cd and Cr, while it was 65%  for Pb, than that of the geochemical baseline value. The deposition of outlet fly ash and waste water may be  responsible to increase metal concentrations in surface soils around the coal mining area. Copper, Zn, Cd, Cr and  Pb concentrations upto carbonate bound fraction were 2.52-17.12, 2.62-40.67, 0, 1.47-17.62 and 4.53-16.10 µg  g–1, respectively. Zinc, Cu, Cd and Cr were the major pollutants in the surrounding soils of Barapukuria because  these metals have contamination factor >1.0 for most sampling stations. Study also revealed moderate pollution  level by these metals after calculated Igeo values. According to risk assessment code, although adjacent soils of  Barapukuria are contaminated with Cu, Zn, Cd, Cr and Pb but these metals are relatively strongly bound to the  soils and are of low risk (<10% for these metals) as regards to mobilization. The study results inferred that if  proper attention is ignored, the concentration of metals will increase to intolerable limits that may have severe  impacts on the soil environment

Keywords
Geochemical baseline
metallic pollution
Barapukuria coal mine
Bangladesh
Conflict of interest
The authors declare they have no competing interests.
References
Agoramoorthy, G., Chen, F.A., Venkatesalu, V. and P.C. Shea (2009). Bioconcentration of heavy metals in selected medicinal plants of India. Journal of Environmental Biology, 30, 175-178.

Baize, D. and H. Paquereau (1997). Teneurs totals en elements traces dans les sols agricoles de Seine-et-Marne (France). Etude et Gestion des Sols, 4(2), 77-94.

BCMCL (Barapukria Coal Mining Company Limited) (2016). A Company of Petrobangla, Bangladesh. Chowhati, Parbatipur, Dinajpur, Bangladesh. http://www.bcmcl.org.bd/. Accessed 24 August 2016.

Boularbah, A., Schwartz, C., Bitton, G. and J.L. Morel (2006). Heavy metal contamination from mining sites in South Morocco: 1. Use of a biotest to assess metal toxicity of tailings and soils. Chemosphere, 63, 802-810.

BPDB (Bangladesh Power Development Board) (2012). Annual Report 2011-12. Bangladesh Power Development Board, Dhaka, Bangladesh.

Callesen, I., Liski, J., Raulund-Rasmussen, K., Olsson, M.T., Tau-strand, L., Vesterdal, L. and C.J. Westman (2003). Soil carbon stores in Nordic well-drained forest soils—relationships with climate and texture class. Global Change Biology, 9(3), 358-370.

Chaffee, M.A. and R.R. Carlson (1998). Environmental geochemistry in Yellowstone National Park: Distinguishing natural and anthropogenic anomalies. Yellowstone Science, 6, 29.

Chaffee, M.A., Hoffman, J.D. and R.R. Tidball (1997). Discriminating between natural and anthropogenic anomalies in the surficial environment in Yellowstone National Park, Idaho, Montana, and Wyoming. U.S. Geological Survey Open-File Report 97-496, v. 16.

Coulthard, T.J. and N.G. Macklin (2003). Modeling long term contamination in river systems from historical metal mining. Geology, 31(5), 451-454.

Darnley, A.G. (1997). A global geochemical reference network: The foundation for geochemical baselines. Journal of Geochemical Exploration, 60, 1-5.

Eppinger, R.G., Briggs, P.H., Brown, Z.A., Crock, J.G., Meier, A., Theodorakos, P.M. and S.A. Wilson (2001). Baseline geochemical data for stream sediment and surface water samples from Panther Creek, the Middle Fork of the Salmon River, and the Main Salmon River from North Fork to Corn Creek, collected prior to the severe wildfires of 2000 in central Idaho. U.S. Geological Survey Open-File Report 01-0161, p. 1-20.

Fang, W.X., Huang, Z.Y. and P.W. Wu (2003). Contamination of the environmental ecosystems by trace elements from mining activities of Badao bone coal mine in China. Environmental Geology, 44, 373-378.

Farhaduzzaman, M., Abdullah, W.H. and M.A. Islam (2012). Depositional environment and hydrocarbon source potential of the Permian Gondwana coals from the Barapukuria basin, Northwest Bangladesh. International Journal of Coal Geology, 90-91(1), 162-179.

Giller, K.E., Witter, E. and S.P. McGrath (1998). Toxicity of heavy metals to microorganism and microbial processes in agricultural soils: A review. Soil Biology and Biochemistry, 30(10-11), 1389-1414.

Islam, M.R., Lahermo, P., Salminen, R., Rojstaczer, S. and V. Peuraniemi (2000). Lake and reservoir water quality affected by metals leaching from tropical soils, Bangladesh. Environmental Geology, 39(10), 1083-1089.

Khan, R., Israili, S.H., Ahmad, H. and A. Mohan (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 and the Environment, 24, 155-161.

Kurek, E. and J.M. Bollag (2004). Microbial immobilization of cadmium released from CdO in the soil. Biogeochemistry, 69(2), 227-239.

Ladwani, K.D., Ladwani, K.D., Manik, V.S. and D.S. Ramteke (2012). Assessment of heavy metal contaminated soil near coal mining area in Gujarat by toxicity characteristics leaching procedure. International Journal of Life Sciences Biotechnology and Pharma Research, 1(4), 73-80.

Linak, W.P. and J.O.L. Wendt (1994). Trace metal transformation mechanisms during coal combustion. Fuel Processing Technology, 39, 173-198.

Maiti, S.K. and M.K. Ghose (2005). Ecological restoration of acidic coal mine overburden dumps—An Indian case study. Land Contamination and Reclamation, 13(4), 361-369.

Miko, S., Durn, G. and E. Prohie (1999). Evaluation of terra rossa geochemical baselines from Croatian karst regions. Journal of Geochemical Exploration, 66, 173-182.

Monni, S., Salemma, M. and N. Millar (2000). The tolerance of Empetrum nigrum to copper and nickel. Environmental Pollution, 109, 221-229.

Muller, G. (1969). Index of geoaccumulation in sediments of the Rhine river. Geojournal, 2(3), 108-118.

Naaz, S. and S.N. Pandey (2010). Effects of industrial waste water on heavy metal accumulation, growth and biochemical responses of Lettuce (Lactuca sativa L.). Journal of Environmental Biology, 31, 273-276.

Perin, G., Craboledda, L., Lucchese, M., Cirillo, R., Dotta, L., Zanetta, M.L. and A.A. Oro (1985). Heavy metal speciation in the sediments of northern adriatic sea: A new approach for environmental toxicity determination. In: Lakkas T.D. (ed) Heavy metals in the environment. CEP Consultants, Edinburg.

Pietraszewska, T.M. (2001). Effect of aluminium on plant growth and metabolism. Acta Biochimica Polonica, 48(3), 673-686.

Quamruzzaman, C., Mondol, M.A.M., Ahmed, M.T., Kabir, S.M.M. and Z. Ahmed (2014). A proposal of open pit coal mine at the northern part of Barapukuria coalfield, Dinajpur, Bangladesh. International Journal of Emerging Technology and Advanced Engineering, 4(3), 482-488.

Rauret, G., Lopez-Sanchez, J.F., Sahuquillo, A., Rubio, R., Davidson, C., Ure, A. and Ph. Quevauviller (1999). Improvement of the BCR three step sequential extraction procedure prior to the certification of new sediment and soil reference materials. Journal of Environmental Monitoring, 1, 57-61.

Salminen, R. and T. Tarvainen (1997). The problem of defining geochemical baselines: A case study of selected elements and geological materials in Finland. Journal of Geochemical Exploration, 60, 91-98.

Salminen, R. and V. Gregorauskiene (2000). Considerations regarding the definition of a geochemical baseline of elements in the surficial materials in areas differing in basic geology. Applied Geochemistry, 15, 647-653.

Salomons, W. (1995). Environmental impact of metals derived from mining activities: Processes, predictions, prevention. Journal of Geochemical Exploration, 52, 5-23.

Sharmin, S., Zakir, H.M. and N. Shikazono (2010). Fractionation profile and mobility pattern of trace metals in sediments of Nomi River, Tokyo, Japan. Journal of Soil Science and Environmental Management, 1(1), 01-14.

Singh, A.K., Mondal, G.C., Kumar, S., Singh, T.B., Tewary, B.K. and A. Sinha (2008). Major ion chemistry, weathering processes and water quality assessment in upper catchment of Damodar River basin, India. Environmental Geology, 54, 745-758.

Singh, A.K., Mahato, M.K., Neogi, B. and K.K. Singh (2010). Quality assessment of mine water in the Raniganj coalfield area, India. Mine Water and the Environment, 29, 248-262.

Smith, K.S. (2007). Strategies to predict metal mobility in surficial mining environments. In: DeGraff J.V. (ed.), Understanding and responding to hazardous substances at mine sites in the western United States: Geological Society of America reviews in engineering geology. Vol. XVII. doi: 10.1130/2007.4017(03).

Tomlinson, D.C., Wilson, J.G., Harris, C.R. and D.W. Jeffrey (1980). Problems in the assessment of heavy metal levels in estuaries and the formation of a pollution index. Helgoland Marine Research, 33, 566-575.

Walkley, A. and I.A. Black (1934). An examination of the Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science, 37, 29-38.

Xi-jun, M., Zhao-hua, L. and C. Jian-long (2008). Ecological risk assessment of open coal mine area. Environmental Monitoring and Assessment, 147(1), 471-481.

Yanguo, T., Shijin, N., Xianguo, T., Chengjiang, Z. and M. Yuxiao (2002). Geochemical baseline and trace metal pollution of soil in Panzhihua mining area. Chinese Journal of Geochemistry, 21(3), 274-281.

Yanguo, T., Shijun, N., Chengjiang, Z. and L. Yu-chang (2001). Countermeasures to restore environment and rehabilitate ecology in the Panzhihua mining industry base. Sichuan Environment, 20, 31-34.

Yao, D., Meng, J. and Z. Zhang (2010). Heavy metal pollution and potential ecological risk in reclaimed soils in Huainan mining area. Journal of Coal Science and Engineering (China), 16, 316-319.

Zakir, H.M., Islam, M.M., Arafat, M.Y. and S. Sharmin (2013). Hydrogeochemistry and quality assessment of waters of an open coal mine area in a developing country: A case study from Barapukuria, Bangladesh. International Journal of Geosciences Research, 1(1), 20-44.

Zakir, H.M., Nahid Sultana and Mousumi Akter (2014). Heavy metal contamination in roadside soils and grasses: A case study from Dhaka city, Bangladesh. Journal of Chemical, Biological and Physical Sciences, 4(2), 1661-1673.

Zakir, H.M., Sumi, S.A., Sharmin, S., Mohiuddin, K.M. and S. Kaysar (2015). Heavy metal contamination in surface soils of some industrial areas of Gazipur, Bangladesh. Journal of Chemical, Biological and Physical Sciences, 5(2), 2191-2206.

Zaman, Z. (2009). Water management in coal mining project: case study Phulbari. Coal News of Phulbari – Bangladesh. https://phulbarinews.wordpress.com/2009/07/12/ water-management-in-coal-mining-project-case-study-phulbari/. Accessed 20 July, 2016.

Zhai, M., Totolo, O., Modisi, M.P., Finkelman, R.B., Kelesitse, S.M. and M. Menyatso (2009). Heavy metal distribution in soils near Palapye, Botswana: An evaluation of the environmental impact of coal mining and combustion on soils in a semi-arid region. Environmental Geochemistry and Health, 31(6), 759-777.
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