147
Views
6
CrossRef citations to date
0
Altmetric
Articles

Water quality assessment and source identification of water pollution in the Banchengzi reservoir, Beijing, China

, , , &
Pages 29240-29253 | Received 03 Dec 2015, Accepted 26 Feb 2016, Published online: 28 Mar 2016

References

  • A.K. Misra, Impact of urbanization on the hydrology of Ganga Basin (India), Water Resour. Manage. 25 (2011) 705–719.10.1007/s11269-010-9722-9
  • M. Milovanovic, Water quality assessment and determination of pollution sources along the Axios/Vardar river, Southeastern Europe, Desalination 213 (2007) 159–173.
  • N.-B. Chang, Sustainable water resources management under uncertainty, Stochastic Environ. Res. Risk Assess. 19 (2005) 97–98.10.1007/s00477-004-0217-1
  • F. Huang, X. Wang, L. Lou, Z. Zhou, J. Wu, Spatial variation and source apportionment of water pollution in Qiantang river (China) using statistical techniques, Water Res. 44 (2010) 1562–1572.10.1016/j.watres.2009.11.003
  • S. Shrestha, F. Kazama, Assessment of surface water quality using multivariate statistical techniques: A case study of the Fuji river basin, Japan, Environ. Modell. Software 22 (2007) 464–475.10.1016/j.envsoft.2006.02.001
  • D. Phung, C. Huang, S. Rutherford, F. Dwirahmadi, C. Chu, X. Wang, M. Nguyen, N.H. Nguyen, C.M. Do, T.H. Nguyen, Temporal and spatial assessment of river surface water quality using multivariate statistical techniques: A study in Can Tho city, a Mekong Delta area, Vietnam, Environ. Monit. Assess. 187 (2015) 1–13.
  • K.P. Singh, A. Malik, D. Mohan, S. Sinha, Multivariate statistical techniques for the evaluation of spatial and temporal variations in water quality of Gomti river (India)—A case study, Water Res. 38 (2004) 3980–3992.10.1016/j.watres.2004.06.011
  • V. Simeonov, J. Stratis, C. Samara, G. Zachariadis, D. Voutsa, A. Anthemidis, M. Sofoniou, T. Kouimtzis, Assessment of the surface water quality in Northern Greece, Water Res. 37 (2003) 4119–4124.10.1016/S0043-1354(03)00398-1
  • K.P. Singh, A. Malik, S. Sinha, Water quality assessment and apportionment of pollution sources of Gomti river (India) using multivariate statistical techniques—A case study, Anal. Chim. Acta 538 (2005) 355–374.10.1016/j.aca.2005.02.006
  • R.A. Marinović, D. Ruždjak, Evaluation of river water quality variations using multivariate statistical techniques: Sava river (Croatia): A case study, Environ. Monit. Assess. 187 (2015) 4393–4393.
  • K.K. Mueller, C. Fortin, P.G. Campbell, Spatial variation in the optical properties of dissolved organic matter (DOM) in lakes on the Canadian Precambrian shield and links to watershed characteristics, Aquat. Geochem. 18 (2012) 21–44.10.1007/s10498-011-9147-y
  • S.R. Carpenter, N.F. Caraco, D.L. Correll, R.W. Howarth, A.N. Sharpley, V.H. Smith, Nonpoint pollution of surface waters with phosphorus and nitrogen, Ecol. Appl. 8 (1998) 559–568.10.1890/1051-0761(1998)008[0559:NPOSWW]2.0.CO;2
  • B. Gu, Variations and controls of nitrogen stable isotopes in particulate organic matter of lakes, Oecologia 160 (2009) 421–431.10.1007/s00442-009-1323-z
  • S. Xi, G. Liu, C. Zhou, L. Wu, R. Liu, Assessment of the sources of nitrate in the Chaohu Lake, China, using a nitrogen and oxygen isotopic approach, Environ. Earth Sci. 74 (2015) 1647–1655.10.1007/s12665-015-4170-8
  • L.I. Wassenaar, Evaluation of the origin and fate of nitrate in the Abbotsford Aquifer using the isotopes of 15N and 18O in NO3−, Appl. Geochem. 10 (1995) 391–405.10.1016/0883-2927(95)00013-A
  • A. Mariotti, A. Landreau, B. Simon, 15N isotope biogeochemistry and natural denitrification process in groundwater: Application to the chalk aquifer of northern France, Geochim. Cosmochim. Acta 52 (1988) 1869–1878.10.1016/0016-7037(88)90010-5
  • H. Yu, Z. Yu, X. Song, X. Cao, Y. Yuan, G. Lu, Seasonal variations in the nitrogen isotopic composition of dissolved nitrate in the Changjiang River estuary, China, Estuarine Coastal Shelf Sci. 155 (2015) 148–155.10.1016/j.ecss.2015.01.017
  • C. Anderson, G. Cabana, δ15N in riverine food webs: Effects of N inputs from agricultural watersheds, Can. J. Fish. Aquat. Sci. 62 (2005) 333–340.10.1139/f04-191
  • J. Zhang, W. Ni, Y. Luo, R. Jan Stevenson, J. Qi, Response of freshwater algae to water quality in Qinshan Lake within Taihu Watershed, China, Phys. Chem. Earth Parts A/B/C 36 (2011) 360–365.10.1016/j.pce.2010.04.018
  • M. Baborowski, V. Simeonov, J.W. Einax, Assessment of water quality in the elbe river at flood water conditions based on cluster analysis, principle components analysis, and source apportionment, Clean–Soil Air Water 40 (2012) 373–380.
  • C.L. Kain, C. Gomez, D.E. Hart, C. Chagué-Goff, J. Goff, Analysis of environmental controls on tsunami deposit texture, Mar. Geol. 368 (2015) 1–14.10.1016/j.margeo.2015.06.011
  • P. Singh, R.K. Chaturvedi, A. Mishra, L. Kumari, R. Singh, D.B. Pal, D.D. Giri, N.L. Singh, D. Tiwary, P.K. Mishra, Assessment of ground and surface water quality along the river Varuna, Varanasi, India, Environ. Monit. Assess. 187 (2015) 1–10.
  • J.R. Pennock, Temporal and spatial variability in phytoplankton ammonium and nitrate uptake in the Delaware Estuary, Estuarine Coastal Shelf Sci. 24 (1987) 841–857.10.1016/0272-7714(87)90156-9
  • H. Yu, Y. Song, H. Gao, L. Liu, L. Yao, J. Peng, Applying fluorescence spectroscopy and multivariable analysis to characterize structural composition of dissolved organic matter and its correlation with water quality in an urban river, Environ. Earth Sci. 73 (2015) 5163–5171.10.1007/s12665-015-4269-y
  • T. Suzuki, S. Nagao, M. Horiuchi, N. Maie, M. Yamamoto, K. Nakamura, Characteristics and behavior of dissolved organic matter in the Kumaki River, Noto Peninsula, Japan, Limnology 16 (2014) 55–68.
  • D.M. McKnight, E.W. Boyer, P.K. Westerhoff, P.T. Doran, T. Kulbe, D.T. Andersen, Spectrofluorometric characterization of dissolved organic matter for indication of precursor organic material and aromaticity, Limnol. Oceanogr. 46 (2001) 38–48.10.4319/lo.2001.46.1.0038
  • A. Zsolnay, E. Baigar, M. Jimenez, B. Steinweg, F. Saccomandi, Differentiating with fluorescence spectroscopy the sources of dissolved organic matter in soils subjected to drying, Chemosphere 38 (1999) 45–50.10.1016/S0045-6535(98)00166-0
  • A. Huguet, L. Vacher, S. Relexans, S. Saubusse, J.-M. Froidefond, E. Parlanti, Properties of fluorescent dissolved organic matter in the Gironde Estuary, Org. Geochem. 40 (2009) 706–719.10.1016/j.orggeochem.2009.03.002
  • S. Silva, C. Kendall, D. Wilkison, A. Ziegler, C.C. Chang, R. Avanzino, A new method for collection of nitrate from fresh water and the analysis of nitrogen and oxygen isotope ratios, J. Hydrol. 228 (2000) 22–36.10.1016/S0022-1694(99)00205-X
  • L. Wu, T.-Y. Long, X. Liu, J.-S. Guo, Impacts of climate and land-use changes on the migration of non-point source nitrogen and phosphorus during rainfall-runoff in the Jialing River Watershed, China, J. Hydrol. 475 (2012) 26–41.10.1016/j.jhydrol.2012.08.022
  • Z. Shen, L. Chen, Q. Liao, R. Liu, Q. Hong, Impact of spatial rainfall variability on hydrology and nonpoint source pollution modeling, J. Hydrol. 472–473 (2012) 205–215.10.1016/j.jhydrol.2012.09.019
  • H. Çamdevýren, N. Demýr, A. Kanik, S. Keskýn, Use of principal component scores in multiple linear regression models for prediction of Chlorophyll—A in reservoirs, Ecol. Modell. 181 (2005) 581–589.10.1016/j.ecolmodel.2004.06.043
  • C. Lindim, J. Pinho, J. Vieira, Analysis of spatial and temporal patterns in a large reservoir using water quality and hydrodynamic modeling, Ecol. Modell. 222 (2011) 2485–2494.10.1016/j.ecolmodel.2010.07.019
  • H. Mash, P.K. Westerhoff, L.A. Baker, R.A. Nieman, M.-L. Nguyen, Dissolved organic matter in Arizona reservoirs: Assessment of carbonaceous sources, Org. Geochem. 35 (2004) 831–843.10.1016/j.orggeochem.2004.03.002
  • Y.-P. Chin, G. Aiken, E. O’Loughlin, Molecular weight, polydispersity, and spectroscopic properties of aquatic humic substances, Environ. Sci. Technol. 28 (1994) 1853–1858.10.1021/es00060a015
  • J.L. Weishaar, G.R. Aiken, B.A. Bergamaschi, M.S. Fram, R. Fujii, K. Mopper, Evaluation of specific ultraviolet absorbance as an indicator of the chemical composition and reactivity of dissolved organic carbon, Environ. Sci. Technol. 37 (2003) 4702–4708.10.1021/es030360x
  • P.G. Coble, Characterization of marine and terrestrial DOM in seawater using excitation-emission matrix spectroscopy, Mar. Chem. 51 (1996) 325–346.10.1016/0304-4203(95)00062-3
  • R. Henderson, A. Baker, K. Murphy, A. Hambly, R. Stuetz, S. Khan, Fluorescence as a potential monitoring tool for recycled water systems: A review, Water Res. 43 (2009) 863–881.10.1016/j.watres.2008.11.027
  • N. Hudson, A. Baker, D. Ward, D.M. Reynolds, C. Brunsdon, C. Carliell-Marquet, S. Browning, Can fluorescence spectrometry be used as a surrogate for the biochemical oxygen demand (BOD) test in water quality assessment? An example from South West England, Sci. Total Environ. 391 (2008) 149–158.10.1016/j.scitotenv.2007.10.054
  • N. Hudson, A. Baker, D. Reynolds, Fluorescence analysis of dissolved organic matter in natural, waste and polluted waters—A review, River Res. Appl. 23 (2007) 631–649.10.1002/(ISSN)1535-1467
  • K.M. Cawley, Y. Ding, J. Fourqurean, R. Jaffé, Characterising the sources and fate of dissolved organic matter in Shark Bay, Australia: A preliminary study using optical properties and stable carbon isotopes, Mar. Freshwater Res. 63 (2012) 1098.10.1071/MF12028

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.