Analysis of the impact of temperature changes on aquatic biological resources and the quality of their habitat on the example of the Black Sea
https://doi.org/10.37663/0131-6184-2023-6-53-57
Abstract
The article provides a brief overview of the work devoted to the analysis of the current water quality standard for temperature. The article presents a retrospective analysis of the formation and development of the system of water quality regulation of water bodies both in Russia and abroad, an analysis of the regulatory legal framework governing the issue of establishing requirements for water quality standards. The analysis of stock data and literature sources on the study of the influence of temperature on the state of aquatic organisms, including ichthyofauna, is carried out. It was found that when approving the current temperature standard, no studies were conducted on marine ecosystems, and the peculiarities of the temperature regime of the southern seas were not taken into account. In order to develop reasonable proposals on the need to adjust the temperature standard, a program of integrated marine research in the Black Sea has been developed.
About the Authors
A. V. TsarevRussian Federation
Andrey V. Tsarev – Deputy Head
125009, Moscow, Bolshoy Kislovsky Lane, 10, p. 1
E. O. Popova
Russian Federation
Elena O. Popova – Deputy Head of the Department of Scientific and Methodological support of Information Resources and Databases
125009, Moscow, Bolshoy Kislovsky Lane, 10, p. 1
O. N. Erina
Russian Federation
Oksana N. Erina – Candidate of Geographical Sciences, Head of the Laboratory of Hydrology of Rivers and Water Resources of the Department of Land Hydrology of the Geographical Faculty
119991, Moscow, Leninskie Gory, 1
References
1. Adobovskiy V.V. et al. (2011). Reactions of aquatic ecosystems of the northwestern Black Sea region on the climate anomalies //Proc. 3-rd Bi-annual Conf. (Odessa, 1-4 Nov. 2011). Odessa. (In Russ.).
2. Belokopytov V.N. (2013). On the climatic variability of the thermohaline structure of the Black Sea // Ekologichna bezpeka priberezhno that shelf zones that complex vikoristannya resources shelf. No. 27. Pp. 226-230. (In Russ.).
3. Water Quality Standards Handbook. Chapter 3: Water Quality Criteria. Environmental Protection Agency, USA. 2003. 57 p.
4. Washington Department of Ecology (WDOE). (2002). Evaluating Standards for Protection of Aquatic Life in Washington's Surface Water Quality Standards, Temperature Criteria, Draft Discussion Paper and Literature Summary. Pp.17-30.
5. Vinberg G.G. (1956). Intensity of metabolism and nutritional needs of fish. Minsk: Belarusian Publishing House. un-ta. 253 p. (In Russ.).
6. Aquatic bioresources and aquaculture of the South of Russia: materials of the III All-Russian Scientific and practical conference of students, postgraduates and young scientists / executive editor G.A. Moskul. – Krasnodar: Kuban State University-T. 2022. 132 p. (In Russ.).
7. Temperature criteria for the vital activity of freshwater fish. Moscow: Polygraph-Plus. 2013. 300 p. (In Russ.).
8. Guidance document: Environmental effects assessment of freshwater thermal discharge. / Environmental Protection Operations Division (Ontario), Environmental Stewardship Branch, Environment and Climate Change Canada. 2019. 170 p.
9. Gusev A.G. (1975). Protection of fishery reservoirs from pollution. – Food Industry. 367 p. (In Russ.).
10. Gusev A.G. (1971). Methodological scheme of comprehensive studies of the influence of wastewater, its components and other pollutants on aquatic organisms, fisheries reservoirs and the establishment of MPC of harmful substances in them. – "Izvestia GosNIORKh". vol. 78. Pp. 29-43. (In Russ.).
11. Gusev A.G. (1967). Scientific and practical results and prospects of research in the field of sanitary protection of fishery reservoirs. In: Scientific Session of GosNIORH. L. Pp. 59-61. (In Russ.).
12. El-Hajaji A.H.S. (2018). Desalination Technologies and Environmental Aspects: Case Study in Libya. – Liverpool John Moores University (United Kingdom). 13. Kamal Mohammedi, Anissa Talamali, Youcef Smaili, Imane Saadoun, Aomar Ait-Aider. (2013). Environmental Impact of Seawater Desalination Plants: Case Study in Algeria. American Journal of Environmental Protection. Vol. 2. No. 6. Pp. 141-148.
13. Sea water quality by hydrochemical indicators. Yearbook 2019. Ed. Korshenko A.N. Moscow: "Science". 2020. 232 p. (In Russ.).
14. Methodological guidelines for the development of water quality standards for water bodies of fishery significance, including standards for maximum permissible concentrations of harmful substances in the waters of water bodies of fishery significance, approved by Order of the Federal Agency for Fisheries dated August 4, 2009 No. 695. (In Russ.).
15. Mizutani D. (2016). Sustainable Options for Desalination: A look into Renewable Energies and Brine Disposal.
16. Kisel A.V. (2019). Desalination of seawater of the Black, Azov and Caspian seas by methods of membrane technologies // Bulletin of Science. Vol. 3. No. 2 (11). Pp. 79-94. (In Russ.).
17. Behavior of fish. / Materials of reports of the V All-Russian Conference. November 8-9, 2014, Borok, Russia. – Kostroma: Kostroma Printing House. 2014. 307 p. (In Russ.).
18. Rules for the protection of surface waters from sewage pollution, approved by the Ministry of Health of the USSR, the Ministry of Water Management of the USSR, the Ministry of Fisheries of the USSR on May 16, 1974. (In Russ.).
19. Standard rules SR2010No2 – Discharge to surface water: cooling water and heat exchangers/ The Environmental Permitting (England and Wales) Regulations. 2016. 7 p.
20. Stroganov N.S. (1962). Ecological physiology of fish. M.: Publishing House of Moscow State University. 422 p. (In Russ.).
21. Supporting Guidance (WAT-SG-85). Application of Standards to Thermal Discharges. Scottish Environmental Protection Agency. 2016. 12 p.
22. Proceedings of the I.D. Papanin Institute of Biology of Inland Waters of the Russian Academy of Sciences. – Borok: I.D. Papanin Institute of Biology of Inland Waters of the Russian Academy of Sciences. 2019. Issue 86(89). 102 p. (In Russ.).
23. Kenigsberg C., Abramovich S., Hyams-Kaphzan O. (2020). The effect of long-term brine discharge from desalination plants on benthic foraminifera //PLoS One. Vol. 15. No. 1. Pp. 227-589.
24. Sola I. et al. (2020). Sustainable desalination: Long-term monitoring of brine discharge in the marine environment //Marine Pollution Bulletin. Vol. 161. Pp. 111-813.
25. Dewar M. et al. (2022). Impact potential of hypersaline brines released into the marine environment for CCS reservoir pressure management //International Journal of Greenhouse Gas Control. vol. 114. Pp. 103-559.
26. Purnama A., Shao D. (2015). Modeling brine discharge dispersion from two adjacent desalination outfalls in coastal waters // Desalination. Vol. 362. Pp. 68-73.
27. RIA novosti Crimea. The cost of the mistake is huge: a scientist of the Russian Academy of Sciences about the risks of desalination of water in the Crimea. [electronic resource]. – Access mode: https://www.ras.ru/digest/showdnews.aspx?id=93dc4732-ee7c-4b0b-a319-4c1caa2d18c8 . (Accessed: 03/19/2021). (In Russ.).
Review
For citations:
Tsarev A.V., Popova E.O., Erina O.N. Analysis of the impact of temperature changes on aquatic biological resources and the quality of their habitat on the example of the Black Sea. Fisheries. 2023;(6):53-57. (In Russ.) https://doi.org/10.37663/0131-6184-2023-6-53-57