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Distribution of nitrate and its implication for the contaminant source in groundwater of Huaibei Plain, Anhui Province

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Abstract

High concentration of NO3-N in groundwater can pose risk to human’s health, thus the study of NO3-N contamination in groundwater is a very important issue related to public health. Using a typical agriculture zone, Huaibei plain in Anhui Province of China as a field site, the temporal and spatial variation of groundwater NO3-N concentration was studied using a multivariate statistical factor analysis combined with Kaiser-Meyer-Olkin method based on a hydrogeological investigation from 2005 to 2009 year. The results show: (1) The contaminant in the groundwater of Huaibei Plain in Anhui Province are serious. 10% of the shallow groundwater samples in non-rainy season of 2005 exceeds the recommended value of NO3-N by Chinese drinking water standard (≥20 mg/L), while 17.5% exceeds the recommended value (11.3 mg/L) by EC. (2) About 15% of shallow groundwater in the whole study area was polluted in 2005 with the maximum of 97.67 mg/L; Groundwater NO3-N concentration is higher in non-rainy season than in rainy season. And the NO3-N content in groundwater shows the increasing trend at all three depths sampled from 2005 to 2009 year. (3) Groundwater nitrate pollution mainly derives from anthropogenic activities in Huaibei Plain, Anhui Province. Further quantitative analysis need to be studied in the future.

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References

  • Almasri, M.N., 2007, Nitrate contamination of groundwater: A conceptual management framework. Environmental Impact Assessment Review, 27, 220–242.

    Article  Google Scholar 

  • Almasri, M.N. and Kaluarachchi, J.J., 2004, Assessment and management of long-term nitrate pollution of ground water in agriculture-dominated watersheds. Journal of Hydrology, 295, 225–245.

    Article  Google Scholar 

  • Almasri, M.N. and Kaluarachchi, J.J., 2005, Modular neural networks to predict the nitrate distribution in ground water using the on ground nitrogen loading and recharge data. Environmental Model & Software, 20, 851–871.

    Article  Google Scholar 

  • APHS, 1992, Standard methods for the examination of water and wastewater (18th edition). American Public Health Association, Washington, DC, 1100 p.

    Google Scholar 

  • Arnade, L.J., 1999, Seasonal correlation of well contamination and septic tank distance. Ground Water, 37, 920–923.

    Article  Google Scholar 

  • Barringer, J.L., Szabo, Z., Kauffman, L.J., Barringer, T.H., Stackelberg, P.E., Ivahnenko, T., Rajagopalan, S., and Krabbenhoft, D.P., 2005, Mercury concentrations in water from an unconfined aquifer system, New Jersey coastal plain. Science of the Total Environment, 346,169–183.

    Article  Google Scholar 

  • Birkinshaw, S.J. and Ewen, J., 2000, Nitrogen transformation component for SHETRAN catchment nitrate transport modelling. Journal of Hydrology, 230, 1–17.

    Article  Google Scholar 

  • Chowdary, V.M., Rao, N.H., and Sarma, P.B.S., 2005, Decision support framework for assessment of non-point-source pollution of groundwater in large irrigation projects. Agricultural Water Management, 75, 194–225.

    Article  Google Scholar 

  • Delgado, J.A., 2002, Quantifying the loss mechanisms of nitrogen. Journal of Soil Water Conservation, 57, 389–398.

    Google Scholar 

  • Du, S.H., Su, X.S., and Zhang, W.J., 2013, Effective storage rates analysis of groundwater reservoir with surplus local and transferred water used in Shijiazhuang City, China. Water and Environment Journal, 27, 157–169.

    Article  Google Scholar 

  • Erickson, D., 1992, Ground Water quality assessment, Whatcom County Dairy Lagoon #2, Lynden, Washington. Washington State Department of Ecology, Open-File Report, 26 p.

    Google Scholar 

  • Esteller, M.V. and Diaz-Delgado, C., 2002, Environmental effects of aquifer overexploitation: a case study in the highlands of Mexico. Environmental Management, 29, 266–278.

    Article  Google Scholar 

  • Freeze, R. and Cherry, J., 1979, Groundwater. Prentice Hall, Englewood Cliffs, 604 p.

    Google Scholar 

  • Harter, T., Davis, H., Mathews, M.C., and Meyer, R.D., 2002, Shallow ground water quality on dairy farms with irrigated forage crops. Journal of Contaminant Hydrology, 55, 287–315.

    Article  Google Scholar 

  • Hubbard. R.K. and Sheridan, J.M., 1994, Nitrates in Groundwater in the Southeastern USA. In: Adriano, D.C., Iskandar, A.K., and Murarka, I.P. (eds.), Contamination of groundwaters. Science Reviews, Northwood, p. 303–345.

    Google Scholar 

  • Jalali, M., 2009, Geochemistry characterization of groundwater in an agricultural area of Razan, Hamadan, Iran. Environmental Geology, 56, 1479–1488.

    Article  Google Scholar 

  • Jan, C.D., Chen, T.H., and Lo, W.C., 2007, Effect of rainfall intensity and distribution on groundwater level fluctuations. Journal of Hydrology, 332, 348–360.

    Article  Google Scholar 

  • Kyllmar, K., Mårtensson, K., and Johnsson, H., 2004, Model-based coefficient method for calculation of N leaching from agricultural fields applied to small catchments and the effects of leaching reducing measures. Journal of Hydrology, 304, 343–354.

    Article  Google Scholar 

  • Lake, I.R., Lovett, A.A., Hiscock, K.M., Betson, M., Foley, A., Sünnenberg, G., Evers, S., and Fletcher, S., 2003, Evaluating factors influencing groundwater vulnerability to nitrate pollution: developing the potential of GIS. Environmental Management, 68, 315–328.

    Google Scholar 

  • Liu, A.G., Ming, J.H., and Ankumah, R.O., 2005, Nitrate contamination in private wells in rural Alabama, United States. Science of the Total Environment, 346, 112–120.

    Article  Google Scholar 

  • Liu, Y., Qian, J.Z., Chen, Z., and Wu, J.F., 2010, An experimental study on the autotrophic denitrification with sulphur electron donor in groundwate. Geochimica et Cosmochimica Acta, 74, 553–648.

    Article  Google Scholar 

  • Liu, Y., Qian, J.Z., Chen, Z., and Zhou, N.Q., 2009, Characterization and bioremediation of groundwater contaminated with nitrate in wetland of Chaohu Lake. Geochimica et Cosmochimica Acta, 73, 783 p.

  • Kaiser, H.F., 1974, An index of factorial simplicity. Psychometrika, 39, 31–36.

    Article  Google Scholar 

  • MacQuarrie, K.T.B., Sudicky, E., and Robertson, W.D., 2001, Numerical simulation of a fine-grained denitrification layer for removing septic system nitrate from shallow ground water. Journal of Contaminant ai]Hydrology, 52, 29–55.

    Article  Google Scholar 

  • Mueller, D.K., Hamilton, P.A., Helsel, D.R., Hitt, K.J., and Ruddy, B.C., 1995, Nutrients in ground water and surface water of the United States-An analysis of data through 1992. United States Geological Survey Water-Resources Investigations Report, 4031, 1–74.

    Google Scholar 

  • Nolan, B.T., Ruddy, B.C., Hitt, K.J., and Helsel, D.R., 1997, Risk of nitrate in groundwaters of the United States-a national perspective. Environmental Science and Technology, 31, 2229–2236.

    Article  Google Scholar 

  • Obeidat, M.M., Massadeh, A.M., Al-Ajlouni, A.M., and Athamneh, F.S., 2007, Analysis and evaluation of nitrate levels in groundwater at Al-Hashimiya area, Jordan. Environmental Monitoring and Assessment, 135, 475–486.

    Article  Google Scholar 

  • Postma, D., Boesen, C., Kristiansen, H., and Larsen, F., 1991, Nitrate reduction in an unconfined sandy aquifer; water chemistry, reduction processes and geochemical modeling. Water Resources Research, 27, 2027–2045.

    Article  Google Scholar 

  • Qian, J.Z., Luo, S.H., Liu, Y., and Chen, G., 2009, Identification of anthropogenic influences on groundwater quality based on hydrogeochemistry survey in Nanfei watershed, China. Geochimica et Cosmochimica Acta, 73, 1063 p.

  • Rowell, D.L., 1994, Soil Science: Methods and Applications. Wiley, New York, 350 p.

    Google Scholar 

  • Sankararamakrishnan, N., Sharma, A.K., and Iyengar, L., 2008, Contamination of nitrate and fluoride in ground water along the Ganges Alluvial Plain of Kanpur district, Uttar Pradesh, India. Environmental Monitoring and Assessment, 146, 375–382.

    Article  Google Scholar 

  • Schilling, K.E. and Wolter, C.F., 2001, Contribution of base flow to nonpoint source pollution loads in an agricultural watershed. Ground Water, 39, 49–58.

    Article  Google Scholar 

  • Spalding, R.F. and Exner, M.E., 1993, Occurrence of nitrate in groundwater — A review. Journal of Environmental Quality, 22, 392–402.

    Article  Google Scholar 

  • Su, X.S., Xu, W., and Du, S.H., 2013, Responses of groundwater vulnerability to artificial recharge under extreme weather conditions in Shijiazhuang City, China. Journal of Water Supply: Research and Technology-Aqua, doi:10.2166/aqua.2013.132.

    Google Scholar 

  • Tao, Y.Z. and Xi, D.Y., 2006, Overdraft evaluation and pumpinglimit planning of groundwater in Huaibei Plain of Anhui Province. Journal of Geotechical, 1, 30–34. (In Chinese)

    Google Scholar 

  • Vinten, A.J.A. and Dunn, S.M., 2001, Assessing the effects of land use on temporal change in well water quality in a designated nitrate vulnerable zone. Science of the Total Environment, 265, 253–268.

    Article  Google Scholar 

  • Wei, F.S., 2003, Method of Analyzing and Monitoring the Water and Wastewater (4th edition). State Environmental Protection Administration of China, China Environmental Science Press, Beijing, 276–280. (In Chinese)

    Google Scholar 

  • Wylie, B.K., Shaffer, M.J., and Hall, M.D., 1995, Regional assessment of NLEAP NO3-N leaching indices. Water Resources Bulletin, 31, 399–408.

    Article  Google Scholar 

  • Zhan, H. and McKay, W.A., 1998, An assessment of nitrate occurrence and transport in Washoe Valley, Nevada. Environmental & Engineering Geoscience, 4, 479–489.

    Article  Google Scholar 

  • Zhu, J.G., Liu, G., Han, Y., Zhang, Y.L., Xing, G.X., 2003, Nitrate distribution and denitrification in the saturated zone of paddy field under rice/wheat rotation. Chemosphere, 50, 725–732.

    Article  Google Scholar 

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Correspondence to Jiazhong Qian.

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Qian, J., Wang, L., Liu, Y. et al. Distribution of nitrate and its implication for the contaminant source in groundwater of Huaibei Plain, Anhui Province. Geosci J 19, 537–545 (2015). https://doi.org/10.1007/s12303-014-0051-5

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  • DOI: https://doi.org/10.1007/s12303-014-0051-5

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