Quality Analysis of Waters from Selected Small Watercourses within the River Basins of Odra River and Wisla River

被引:0
作者
Brysiewicz, Adam
Bonislawska, Malgorzata
Czerniejewski, Przemyslaw
Kierasinski, Bartosz
机构
[1] Univ Milan, Dept Pharmacol & Biomol Sci, Milan, Italy
[2] IRCCS, Ctr Cardiol Monzino, Milan, Italy
[3] Humanitas Res Fdn, IRCCS, Milan, Italy
[4] IRCCS Multimed, Milan, Italy
[5] Bassini Hosp, SISA Ctr Study Atherosclerosis, Milan, Italy
[6] Queen Mary Univ, Barts & London Sch Med & Dent, William Harvey Res Inst, London, England
来源
ROCZNIK OCHRONA SRODOWISKA | 2019年 / 21卷 / 02期
关键词
watercourses; catchment; water quality; pollution; EUTROPHICATION; BIODIVERSITY; PHOSPHORUS; STREAMS;
D O I
暂无
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
An important source of contamination of inland waters is the content of nitrogen and phosphorus compounds, which in agricultural areas constitute a significant threat by getting into flowing waters. The runoff of mineral substances from areas with high intensification of agriculture contribut to increase of nutrient content in rivers, which often causes disturbances in water quality, with excess nutrients supporting the growth of phytoplankton (algae receipts) and macrophytes and associated with it loss of habitats and desirable plant and animal species. The small rivers play an important role in the water quality of large rivers. The purpose of this work is to assess the quality of water in small lowland rivers, which are tributaries of the Odra and Wisla rivers, with particular emphasis on the content of biogenic compounds (nitrogen and phosphorus forms). The study was carried out on 10 small rivers from the Odra river basin (Plonia, Mysla, Tywa, Rurzyca and Wardynka River), and the Wisla river basin (Habdzinski Channel, Zielona, Czarna-Cedron, Kraska and Molnica River). The analyzed water samples in all rivers had increased content of reactive phosphorus, which allows to classify the waters into nonclass waters. The highest exceedences were recorded in the Plonia River (on average 1.505 mg P-PO43-/L) in the Odra river basin, while in the in the Wisla basin the highest exceedances were recorded in the Molnica watercourse (average 2.023 mg P-PO43-/L). Also high concentrations of the nitrate-nitrogen content were recorded, and the highest amounts of N-NO3-/L were found in the Rurzyca River (the Odra catchment - 7.321 mg N-NO3-/L) and in Molnica River (Wisla catchment - 5.092 mg N-NO3-/L). Lower values of ammonium nitrogen were found in all tested watercourses, classifying water to the first class of water quality according to Minister of the Environment Regulation (21.07.2016r.). Only increased concentrations classifying the examined waters up to the 2nd water quality class were recorded in the Rurzyca river (Odra catchment - 0.350 mg N-NO3-/L average, and in the Habdzinski Channel (Wisla catchment - 0.293 mg N-NO3-/L). Significant increases in the content of biogenic compounds classifying tested waters to the 2nd class and above, were also conducive to low values of oxygen concentration in water and high conductance. For example in the Molnica river, high nitrate nitrogen and phosphate content influenced on low water oxygenation. In addition, there was a very low water level in the watercourse, which could have triggered nutrient loads in bottom sediments. Contamination of waters from agricultural areas with nitrogen and phosphorus compounds may pose a threat to larger rivers to which they can pass without proper monitoring.
引用
收藏
页码:1202 / 1216
页数:15
相关论文
共 19 条
[1]   The role of headwater streams in downstream water quality [J].
Alexander, Richard B. ;
Boyer, Elizabeth W. ;
Smith, Richard A. ;
Schwarz, Gregory E. ;
Moore, Richard B. .
JOURNAL OF THE AMERICAN WATER RESOURCES ASSOCIATION, 2007, 43 (01) :41-59
[2]   The importance of small waterbodies for biodiversity and ecosystem services: implications for policy makers [J].
Biggs, J. ;
von Fumetti, S. ;
Kelly-Quinn, M. .
HYDROBIOLOGIA, 2017, 793 (01) :3-39
[3]   Assessing the impact of agricultural pressures on N and P loads and eutrophication risk [J].
Dupas, Remi ;
Delmas, Magalie ;
Dorioz, Jean-Marcel ;
Garnier, Josette ;
Moatar, Florentina ;
Gascuel-Odoux, Chantal .
ECOLOGICAL INDICATORS, 2015, 48 :396-407
[4]  
Ilnicki P., 2014, Journal of Water and Land Development, P31
[5]   Phosphorus Mitigation to Control River Eutrophication: Murky Waters, Inconvenient Truths, and "Postnormal" Science [J].
Jarvie, Helen P. ;
Sharpley, Andrew N. ;
Withers, Paul J. A. ;
Scott, J. Thad ;
Haggard, Brian E. ;
Neal, Colin .
JOURNAL OF ENVIRONMENTAL QUALITY, 2013, 42 (02) :295-304
[6]  
Kanclerz J, 2018, ROCZ OCHR SR, V20, P873
[7]   Can we predict nutrient limitation in streams and rivers? [J].
Keck, Francois ;
Lepori, Fabio .
FRESHWATER BIOLOGY, 2012, 57 (07) :1410-1421
[8]   Preface: The importance of small water bodies [J].
Kelly-Quinn, Mary ;
Biggs, Jeremy ;
von Fumetti, Stefanie .
HYDROBIOLOGIA, 2017, 793 (01) :1-2
[9]  
Kondratowicz A., 2006, ROCZNIK OCHRONA SROD, V22, P355
[10]   Headwater streams: neglected ecosystems in the EU Water Framework Directive. Implications for nitrogen pollution control [J].
Lassaletta, Luis ;
Garcia-Gomez, Hector ;
Gimeno, Benjamin S. ;
Rovira, Jose V. .
ENVIRONMENTAL SCIENCE & POLICY, 2010, 13 (05) :423-433