Please use this identifier to cite or link to this item: https://repo.btu.kharkov.ua/handle/123456789/59313
Title: Аналіз сезонної динаміки гідрохімічних показників річної води
Other Titles: Analysis of seasonal dynamics of hydrochemical parameters of annual water
Authors: Куцак, Ігор Васильович
metadata.dc.contributor.advisor: Гноєвий, І. В.
metadata.dc.contributor.affiliation: Державний біотехнологічний університет
Кафедра біотехнології, молекулярної біології та водних біоресурсів
Keywords: якість річкової води;фізико-хімічна характеристика;динаміка температури;вмісту розчиненого кисню;рН;загального азоту;river water quality;physical and chemical characteristics;dynamics of temperature;content of dissolved oxygen;total nitrogen
Issue Date: 2024
Publisher: Харків: ДБТУ
Citation: Куцак І. В. Аналіз сезонної динаміки гідрохімічних показників річної води: кваліфікаційна робота магістра: спец. 207 Воднi бiоресурси i аквакультура; наук. кер. І. В. Гноєвий. Харків: ДБТУ, 2024. 65 с.
Abstract: Мета кваліфікаційної роботи – проаналізувати динаміку зміни основних інтегральних показників якості поверхневих вод річок України (температура, рН, завислі у товщі води речовини, запас розчиненого кисню) за більш ніж 10 років і надати математичну модель прогнозування коливань досліджуваних показників до 2030 року. Для вирішення мети були поставлені завдання: 1. Дати характеристику рибних угідь України в залежності від гідрології річної води. 2. Провести дослідження температури, рН, вмісту кисню і завислих речовин у товщі води у річках Дніпро, Дністер і Інгул. 3. Провести дослідження солоності та кислотності води, вмісту розчинених азотних речовин і фосфатів для визначення фізико-хімічних характеристик води
The purpose of the qualification thesis is to analyze the dynamics of changes in the main integral indicators of the surface water quality of the rivers of Ukraine (temperature, pH, substances suspended in the water column, dissolved oxygen supply) for more than 10 years and to provide a mathematical model for forecasting the fluctuations of the studied indicators until 2030. To solve the goal, the tasks were set: 1. To describe the fishing grounds of Ukraine depending on the hydrology of annual water. 2. Conduct research on temperature, pH, oxygen content and suspended matter in the water column in the Dnipro, Dniester and Ingul rivers. 3. Conduct research on salinity and acidity of water, the content of dissolved nitrogen substances and phosphates to determine the physical and chemical characteristics of water.
URI: https://repo.btu.kharkov.ua//handle/123456789/59313
metadata.dcterms.references: 1. Abbasi T. 2012. New trends in removing heavy metals from industrial wastewater : Elsevier Science Ltd. 384. 2. Anonymous (2003). A Manual on Water and Wastewater Analysis. One Day Training Programme. Conducted by Gujarat Pollution Control Board (GPCB). Gandhinagar. 3. APHA (1915). Standard methods for the examination of water and wastewater. 20th Edition. American Public Health Association. American water works Association, Water Environment Federation, Washington D.C. ISBN 0-87553-235-7 4. Barakat M.A. 2011. Water quality indices. Amsterdam. Arab. J. Chem., 4, 361–377. 5. Bashynska I.L. 2018. Influence of the South-Ukraine electric power producing complex on the ecological condi- tion of the Southern Bug River.. (Environmental estimation of efficiency of drinking water purification on plumbing of UC. Zhytomyrvodokanal). Naukovi horyzonty (Scientific horizons), 7–8(70), 50–58. 6. Baxer R.M. (1977). Environmental effects of dam and impoundment. Ann. Rev. Ecol. Syst., 8(1), 255-283. 7. Bauer C., Schlott K. and Schlott G. (2010). Carp ponds and the EU water framework directive. Souvenir from 4th EPCN, Berlin (Erkner), 16. 8. Bernad A. 2013 – Infectious and invasive fish diseases occur- ring in the Warmia and Mazury region in 2010-2012 – In: Recent Research on the Occurrence of Infectious and Invasive Fish Diseases in Poland (Eds) A. Koziñska, A. Pękala, Wyd.PIWet–PIB, Puławy, 7-16 (in Polish). 9. Bezsonov Ye., Smyrnova S. 2017. Ekolohichna otsinka efek- tyvnosti ochyshchennia pytnoi vody na vodoprovidnykh sporudakh komunalnoho pidpryiemstva. Zhytomyrvodokanal Eastern-European Journal of Enterprise Technologies, 4/10(88), 20–28. 10.Biggs J., Williams P., Whitfield M., Nicolet P. and Weatherby A. (2005). 15 years of pond assessment in Britain: results and lessons learned from the work of Pond Conservation. Aquat. Conserv. Mar. Freshw. Ecosyst., 15(6), 693-714. 11. Birk S., Bonne, W. 2012. Reliable, Resilient and Sustainable Water Management. Ecological Indicators, 18, 31–41. 12. Butler D., Ward S., Sweetapple C., Fu G. 2016. Three hundred ways to assess Eu- rope’s surface waters: An almost complete overview of biological methods to implement the Water Framework Directive: The Safe and SuRe Approach. J. Global Challenges, 1(1), 63–77. 13. Byrne D.M., Guest J.S. 2017. An Integrated Environmental Assessment of Green and Grey Infrastructure Strategies for Robust Decision Making. J. Environ mental Science: Water Research and Technology, 3(6), 1002–1014. 14. Casal-Campos A., Butler G., Moore A. 2015. Life Cycle Assessment (LCA) of Urban Water Infrastructure: Emerging Approaches to Balance Objectives and Inform Comprehensive Decision-Making. J. Environmental Science and Tech- nology, 49 (14): 8307–8314. 15. Charis M. & Galanakis E.A. 2010. Assessment of Technogenic Loading on the Surface Water Bodies of the Separate Regions of the North-Western Black Sea: Amsterdam, The Netherlands, 393. 16. Chugai A. and Safranov T. 2020. Sustainable Water and Wastewater Processing. Elsevier. Journal of Ecological Engineering, 21(5), 197–201. 17. Cieśla M., Gruca-Rokosz R., 2020. Transitions through a Lens of Urban Water. Empirical Analysis in the Maziarnia Reservoir, Poland. Resources, 9(3), 30. 18. De Haan F.J., Rogers B.C., 2015. Connection between a Suspended Sediments and Reservoir Siltation J. Environmental Innovation and Societal Transitions, 15, 1–10. 19.Deshkar S.L. (2008). Avifaunal diversity and ecology of wetlands in semi-arid zone of Central Gujarat with reference to their conservation and categorization.(Unpublished doctoral dissertation) Maharaja Sayajirao University of Baroda, Vadodara, India. 20.Devetter M. (1998). Influence of environmental factors on the rotifer assemblage in an artificial lake. Hydrobiol., 387/388, 171-178. 21. Efficiency of Sewage Treatment of Company (Regional report on a condition of environment in the Mykolaiv area). 22.Ekhande A.P. (2015). Hydrobiological studies of Yashwant lake with special reference to selected biodiversity. (Unpublished doctoral dissertation) Maharaja Sayajirao University of Baroda, Vadodara, India. 23.Fahd K., Arechederra A., Florencio M., Leon D. and Serrano L. (2009). Copepods and branchiopods of temporary ponds in the Donana Natural Area. 24. Farrelly M. and Brown R. 2011. Revista Busta Physico-chemical Water Quality Indices J. Global Environmental Change, 21(2), 721–732. 25. Fernandez N., Ramirez A. and Solano F. 2012. Rethinking Ur- ban Water Management: Experimentation as a Way Forward?. A Comparative Review. 26.Garg R.K., Rao R.J., Uchchariya D., Shukla G. and Saksena D.N. (2010). Seasonal variations in water quality and major threats to Ramsagar reservoir, India. African J Environ. Sci. Tech., 4(2), 61-76. 27. Gersonius B., Ashley. R.. 2013. Removal of Pesticides from Wastewater by the Use of Constructed Wetlands.. Clim. Change, 116(2), 411– 423. 28. Ginneken V., Haenen O., Coldenhoff K., Willemze R., Antonissen E., Van Tulden P., Dijkstra S., Wagenaar F., Van den Thillart G. 2004 – Presence of eel viruses in eel species from various geographic regions – Bull. Eur. Assoc. Fish Pathol. 24: 268-271. 29. Grudniewska J., Dobosz S., Terech-Majewska E., Zalewski T., Siwicki A.K. 2010 – Economic and health aspects of vac- cinating against furunculosis and yersiniosis in rainbow trout culture – Komun. Ryb. 1 (114): 18-21 (in Polish). 30. Ignatowicz K. 2020. Climate change uncertainty: Building flexibility into water and flood risk infrastructure Journal of Ecological Engineering, 21(1), 210–218. 31. Ishchenko V., Zawislak S. 2019. Advancing human capabilities for water security. International Multidisciplinary Scientific Geoconference SGEM 2019, Albena, Bulgaria. 30 June – 6 July 2019, 6.1, 19, 559−566. 32. Jepson W., Budds J., O’Reilly K., Young S. 2017. Assessment of Hazardous Household Waste Generation in Eastern Europe: A relational approach. J. Water Security, 1, 46−52. 33.Jeppesen E., Jensen J.P., Sondergaard M., Lauridsen T. and Landkildehus F. (2000). Trophic status, species richness and biodiversity in Danish lakes: changes along a phosphorus gradient. Freshw. Biol., 45(2), 201-218. 34.Karatayev A.Y., Burlakova L.E. and Dodson S.I. (2005). Community analysis of Belorusian lakes: relationship of species diversity to morphology, hydrology, and land use. J. Plankton Res., 27(10), 1045-1053. 35. Kovacs A., Zavadsky I. 2021. Best Management Practices for Diffuse Nutrient Pollution: Wicked Problems Across Urban and Agricultural Watersheds. J. Water international. 46, 176–194. 36. . Lambrakis N., Antonakos A. and Panagopoulos G. (2004). The use of multicomponent statistical analysis in hydrological environmental research. Water Res., 38(7), 1862-1872. 37. Lintern A., McPhillips L., 2020. Success and sustainability of nutrient pollution reduction in the Danube River Basin: recovery and future protection of the Black Sea Northwest shelf. Environmental Science & Technology, 54:15, 9159–9174. 38.Liu C-W, Lin K-H. and Kuo Y-M. (2003). Application of factor analysis in the assessment of groundwater quality in a blackfoot disease area in Taiwan. Sci.Tot.Environ., 313, 77-89. 39. Lykhovyd P.V. & Kozlenko Ye.V. 2018. Real-time Monitoring of Water Quality to Identify Pollution Pathways in Small and Middle Scale Rivers. Ukrainian Journal of Ecology, 8(1), 350–355. 40.McDaniel L. (2007). Understanding IOWA’s water quality standards: Revising criteria for chloride, sulfate and total dissolved solids. IOWA. 41.McCartney M.P., Stratford C., Neal C., Mills S., Bradford R. and Johnson M. (2003). Seasonality and water quality trends in a maturing recreated reed bed. Sci. Tot. Environ., 314/316, 233-254. 42. Mendiguchia C., Moreno C., Galindo-Riano D.M. and Garcia-Vargas M. (2004). Using chemometric tools to assess anthropogenic effects in river water. A case study: Guadalquivir River (Spain). Anal. Chimica Acta, 515(1), 143-149. 43. Meyer A.M., Klein C., Fünfrocken E. 2019. Assessment and forecast of water quality in the River Ingulets irrigation system. Science of the Total Environment, 651, 2323–2333. 44. Mitryasova O. & Pohrebennyk V. 2017. The Status of the Small River as an Indicator of the Water Security of Natural Surface Water, 17th International Multidisciplinary Scientific GeoConference, International Multidisciplinary Scientific GeoConference SGEM, Vienna, Austria, 27 November – 29 November 2017, 33(17), 235– 242. 45. Mitryasova O. & Pohrebennyk V. 2017. Integrated Environmental Assessment of the Surface Waters Pollution: Regional Aspect. SGEM, Hydrology and Water Resources, 2017, Vienna, Austria, 17(33), 391– 398. 46. Mitryasova O., Ziembowicz S. 2020. Environmental and Geochemical Parameters of Bottom-Sediment from the Southern Bug Estuary.. Journal of Ecological Engineering, 21(3), 51–60. 47. Mitryasova O., Koszelnik P. 2021. Features of Heavy Metals Accumulation in Bottom Sediments of the Southern Bug Hydroecosystem Journal of Ecological Engineering, 22(2), 244–255. 48. Mitryasova O. & Pohrebennyk V. 2020. Environmental Footprint Enterprise as Indicator of Balance it’s Activity. 17th International Multidisciplinary Scientific Geoconference SGEM 2017. Studies in Systems, Decision and Control In: Springer, Cham., 198, 91−104. 49. Mitryasova O., Pohrebennyk V., 2017. Hydrochemical Indicators of Water System Analysis as Factors of the Environmental Quality State. Sustainable Production: Novel Trends in Energy, Environment and Material Systems, Albena, Bulgaria, 29 June – 5 July 2017, 51 (17), 371–378. 50. Mitryasova O., Mats A. 2021, Hydrochemical Aspects of Surface Water Quality Assessment.. Journal of Ecological Engineering, 22(4), 283–295. 51. Mitryasova О., Pohrebennyk V., Kardasz P. 2018. Temporal Patterns of Quality Surface Water Changes 18th International Multidisciplinary Scientific Geoconference SGEM 2018, Albena, Bulgaria. 30 June – 9 July 2018, 5.2. (18), 513−520. 52. NRDC. 2013. Climate Change and Water Resource Management. URL: https://www.nrdc.org/resources/ climate-change-and-water-resource-management. 53. O’Hare M., Clayton J.S., Wood K.A. 2018. Electrospark Method in Galvanic Wastewater Treatment for Heavy Metal Removal.. Hydrobiologia, 812(1), 1–10. 54.Olias M., Ceron J.C., Moral F. and Ruiz F. (2006). Water quality of the Guadiamar River after the Aznalcollar spill (SW Spain). Chemo., 62(2), 213-225. 55.Patil J.V. (2013). Study of selected faunal biodiversity of Toranmal area, Toranmal Reserve Forest. (Unpublished doctoral dissertation) Maharaja Sayajirao University of Baroda, Vadodara, Gujarat India. 56.Patil J.V., Ekhande A.P. (2011). Study of Lotus Lake: Its abiotic factors their correlation with reference to seasonal changes and altitude. Ann. Biol. Res., 2(4), 44-56. 57.Patra A., Santra K.B. and Manna C.K. (2010). Limnological Studies Related to Physico-Chemical Characteristics of Water of Santragachi and Joypur Jheel, 58. Petrov O., Petrichenko S.,. 2020. Plants in aquatic ecosystems: current trends and future directions Applied Sciences, Special Issue. Determination and Extraction of Heavy Metals from Waste- water and Other Complex Matrices, 10(15), 5148. 59. Pohrebennyk V., Shybanova A. 2016. Regіonal’na dopovіd’ pro stan navkolishn’ogo prirodnogo seredovishcha v Mykolaїvskіj oblastі. Enzyme. 16th International Multidisciplinary Scientific Geoconference SGEM 2016, Albena, Bulgaria, 30 June – 6 July 2016, Ecology, Economics, Education and Legislation, Ecology and Environmental Protection, 2(5) 295–302. 60. Pond Manifesto, European Conservation Network, (2008). 61.Qadir A., Malik R.N. and Husain S.Z. (2008). Spatio–temporal variations in water quality of Nullah Aik-tributary of the river Chenab, Pakistan. Environ. Monitor. Assess., 140, 43-59. 62.Rathod J. and Padate G.S. (2008). A Comparative Study of Avifauna of A Sub Urban Wetland and an Irrigation Reserviour of Savli Taluka, District Vadodara. Souvenir from Proceedings of Taal2007: The 12th World Lake Conference, 537-541. 63.Rathod J.Y. (2009). Avifauna of urban area: Its significance and implications under various human disturbances. (Unpublished doctoral dissertation) Maharaja Sayajirao University of Baroda, Vadodara, India.Ramachandra T.V., Conservation and Management of Wetlands. Allied Publishers (P) Ltd, India. 64. Regіonal’na dopovіd’ pro stan navkolishn’ogo prirodnogo seredovishcha v Dnipropetrivskіj oblastі (Regional report on a condition of environment in the Dnipropetrivk area). 65. Regіonalnyj ofіs vodnyh resursіv u Mikolaїvs’kіj oblastі (Regional office of water resources in the Mykolaiv area). 66. Schickele A., Raybaud V. 2020. Assessment of Ecological State and Ecological Reliability of the Lower Section of the Ingulets River: Methodological insights. Ecological Modelling, 416, 108902. 67.Singh K.P., Malik A., Mohan D. and Sinha S. (2004). Multivariate statistical techniques for the evaluation of spatial and temporal variations in water quality of Gomti River (India): a case study. Water Res., 38(18), 3980-3992. 68.Simeonova P., Simeonov V. and Andreev G. (2003). Water quality study of the Struma River Basin, Bulgaria (1989–1998). Cent. Euro. J. Chem., 1(2), 121-236. 69.Simeonov V., Stratis J.A., Samara C., Zachariadis G., Voutsa D., Anthemidis A., Sofoniou M. and Kouimtzis T. (2003). Assessment of the surface water quality in Northern Greece. Water Res., 37(17), 4119-4124. 70. Shakhman I. A. & Bystriantseva A.N. 2017. Modelling European Small Pelagic Fish Distribution. Hydrobiological Journal, 53(5), 103–109. 71. Shakhman I. and Bystriantseva A. 2021. Assessment of the ecological and chemical state of springs in urban and rural settlements of the bryansk region based on monitoring data for 2012–2020.. Journal of Ecological Engineering, 22(1), 195–205. 72.Sharma S., Kumar V. and Tripathi R.B. (2011). Isolation of phosphate solubilizing microorganism (PSMs) from soil. J. Microbiol. Biotech. Res., 1(2), 90-95. 73.Shrestha S. and Kazama F. (2007). Assessment of surface water quality using multivariate statistical techniques: a case study of the Fuji River basin, Japan. Environ Model Software, 22(4), 464-475. 74. Soboleva O.A., Anischenko L.N., Shchetinskaya O.S., Dolganova M.V. and Demichov V.T. 2020. Water Quality Assessment of the Surface Water of the Southern Bug River Basin by Complex Indices J. Siberian Journal of Life Sciences and Agriculture, 12(5), 128–149. 75.Sreenivasan A. (1970). Limnology of tropical impoundments: A comparative study of the major reservoirs in Madras State (India). Hydrobiol., 36(3-4), 443-469. 76. Staddon C., Langberg S. 2017. Can Water Quality Trading Fix the Agricultural Nonpoint Source Problem?.Freshwater Governance for the 21st Century. edited by E. Karar. Springer, 81–102. 77.Stenson J.A.E. (1982). Fish impact on rotifer community structure. Hydrobiol., 87, 57-64. 78. Stephenson K. & Shabman L. 2017. Urban Water Governance as a Function of the “Urban Hydrosocial Transition. In E. Karar (Ed.) Annual Review of Resource Eco- nomics, 9(1), 95–116. 79.Strobl R.O. and Robillard P.D. (2008). Network design for water quality monitoring of surface freshwaters: a review. J. Environ Manag., 87(4), 639-648. 80.Timms B.V. (1970). Chemical and zooplankton studies of lentic habitats in North Eastern New South Wales. Aust. J. Mar. Wat. Res., 21(1), 11-33. 81.Trivedy R.K. and Goel P.K. (1984). Chemical and biological methods for water pollution studies. Environmental publications, Karad, India. 82. Trus I. 2021. Ekolohycheskoe normyrovanye kachestva poverkhnostnыkh vod s uchetom rehyonalnыkh osobennostei (Ecological Rationing of Surface Water Quality Taking into Account Regional Features). Journal of Chemical Technology and Metallurgy, 56(3), 615–620. 83.Tu J. (2011). Spatially varying relationships between land use and water quality across an urbanization gradient explored by geographically weighted regression. App.Geog., 31(1), 376-392. 84.Varol M., (2012). Water quality assessment and apportionment of pollution sources of Tigris River (Turkey) using multivariate statistical techniques — a case study. River Res. App., 28(9), 1428-1438. 85.Varol M. (2009). Assessment of surface water quality using multivariate statistical techniques: a case study of Behrimaz Stream, Turkey. Environ Monitor and Assess., 159, 543-553. 86.Varol M., Gökot B., Bekleyen A. (2012). Spatial and temporal variations in surface water quality of the dam reservoirs in the Tigris River basin, Turkey. Catena, 92, 11-21. 87. Vasenko O.G., Rybalova O.V. 2017. Effectiveness Of Nanofiltration During Water Purification From Heavy Metal Ions. Hydrology, hydrochemistry and hydroecology, 1(44), 21–33. 88.Vega M., Pardo R., (1998). Assessment of seasonal and polluting effects on the quality of river water by exploratory data analysis. Water Res., 32(12), 3581-3592. 89.Vencatesan J. (2007). Protecting Wetlands. Curr. Sci., 93(3), 288-290. 90. Vlasov B. 2014., Evolving Wastewater Infrastructure Paradigm to Enhance Harmony with Nature Zoology and Ecology, 24(2). 91. Wang X., Liu G., 2018. Community of higher aquatic plants. Sci. Adv. 4, 1–10. 92. Ward S., Mwinkom X.F. 2019. Otsinka yakosti pryrodnykh vod (Assessment of Natural Water Quality). Journal of Hydroinformatics, 21(1), 32–44. 93.W.B., India. Our Nature, 8(1), 185-203. 94.Winner R.W., Strecker R.L. and Ingersoll E.M. (1962). Some physical and chemical characteristics of Acton Lake, Ohio. Ohio J. Sci., 62, 55-61. 95.Williams P., Whitfield M., Biggs J., Bray S., Fox G., Nicolet P. and Sear D. (2003). Comparative biodiversity of rivers, stream, ditches and ponds in an agricultural landscape in Southern England. Biol. Conserv., 115(2), 329-341. 96.Wrona F., Le´vesque L. and Warwick F. (2006). Climate Change Effects on Aquatic Biota, Ecosystem Structure and Function. Ambio, 35(7), 359-369. 97.Wunderlin D.A., Bistoni M.A. (2001). Pattern recognition techniques for the evaluation of spatial and temporal variations in water quality. A case study: Suquia River basin (Cordoba, Argentina). Water Res., 35(12), 2881- 2894. 98. Yurasov S.M., Safranov T.A. and Chugai A.V. 2012. Water resources data, models and decisions: International expert opinion on knowledge management for an uncertain but resilient future.. Odessa: Ecology, 168 99. Zakon Ukrainy “Pro zatverdzhennya Zagal’noderzhavnoї cіl’ovoї programi rozvitku vodnogo gospodarstva ta ekologіchnogo ozdorovlennya basejnu rіchki Dnіpro na perіod do 2021 roku” (Law of Ukraine “On approval of the National target pro gram for the development of water management and ecological rehabilitation of the Dnieper river basin for the period up to 2021”). 100. Zinabu G-M. (2002). The effects of wet and dry seasons on concentrations of solutes and phytoplankton biomass in seven Ethiopian rift-valley lakes. Limnol., 32(2), 169-179
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