Modern changes of the runoff characteristics of the rivers of the Greater Caucasus

Abstract

The article is devoted to the analysis of modern changes in annual runoff, its main components – underground and surface runoff, as well as the minimum winter and summer-autumn runoff rivers of the Greater Caucasus within Azerbaijan. A brief review of previous studies on flow changes in the country is given. It is noted that in these works the method of geographical comparison and linear trend analysis were used. It is concluded that the changes in the surface and under ground runoff of the rivers of the Greater Caucasus due to climate change have not yet been analysed. The data on the runoff of 17 hydrological observation points covering 1934–2017 were analysed. All these hydrological observation points are located in the mountainous part of the river basins, i. e. runoff indices characterise the natural or conditionally natural regime of rivers. The annual values of the underground flow were determined as the arithmetic average of the monthly average minimum winter and summer-autumn water discharges. The annual values of surface runoff are calculated as the difference between annual and underground runoff. The method of geographical comparison is used. Calculations and generalisations of the results obtained are performed for different periods, according to the recommendations of the World Meteorological Organisation. It was revealed that, for 1981–2010 and 2001–2017 surface runoff of the rivers of the studied region decreased compared to runoff for the base period (1961–1990), due to a decrease in the amount of snow precipitation and a decrease in the volume of spring flood. However, there was a more significant increase in the underground flow of rivers and, therefore, an increase in annual flow was observed throughout the region. The dynamics of changes in the minimum river flow, especially in the winter season, is also positive, since over the past decades the snow cover has been melting earlier than usual, and favorable conditions are being created for the formation of groundwater that feeds the rivers during periods of minimal runoff. It is noted that the revealed nature of changes in various indices of river flow in the studied region is associated with climate change.

Author Biography

Irada S. Aliyeva, Baku State University, 23 Zahid Halilov Street, Baku AZ1148, Azerbaijan

PhD (geography); associate professor at the department of hydrometeorology, faculty of geography.

References

  1. Beits BK, Kundtsevich ZV, Saokhon U, Palyutikof Zh, editors. Izmenenie klimata i vodnye resursy [Climate change and water]. Geneva: Intergovernmental Panel on Climate Change; 2008. 228 p. Russian.
  2. Mahmudov RN. Sovremennye izmeneniya klimata i opasnye gidrometeorologicheskie yavleniya [Modern climate change and dangerous hydrometeorological phenomena]. Baku: NAA; 2018. 232 p. Azerbaijani.
  3. Huntington TG. Evidence for intensification of the global water cycle: review and synthesis. Journal of Hydrology. 2006;319 (1–4):83–95. DOI: 10.1016/j.jhydrol.2005.07.003.
  4. Gelfan AN, Kalugin AS, Krylenko IN, Lavrenov AA, Motovilov YuG. Hydrological consequences of climate change in large basins: combined use of regional hydrological models and global climate models. Voprosy geografii. 2018;145:49–63. Russian.
  5. Georgievsky VYu, Georgievsky MV, Golovanov OF, Shalygin AL. Land-based water systems. In: Roshydromet. Second Roshydromet Assessment Report on Climate Change and its Consequences in the Russian Federation. Moscow: Roshydromet; 2014. p. 350–360. Russian.
  6. Dzhamalov R, Frolova N, Kireeva M, Rets E. Present-day surface and subsurface water resources of European Russia: conditions, use and forecast. In: Trevor D, editor. Proceedings of FRIEND-Water 2014: Hydrology in Changing World: Environment and Human Dimensions. [S. l.]: International Association of Hydrological Sciences; 2014. p. 45–50. (IAHS publication; volume 363).
  7. Vano JA, Lettenmaier DP. A sensitivity-based approach to evaluating future changes in Colorado River discharge. Climatic Change. 2014;122(4):621–634. DOI: 10.1007/s10584-013-1023-x.
  8. Peel MC, Blöschl G. Hydrological modeling in a changing world. Progress in Physical Geography: Earth and Environment. 2011;35(2):249–261. DOI: 10.1177/0309133311402550.
  9. Chiew FHS, Teng J, Vaze J, Post DA, Perraud JM, Kirono DGC, et al. Estimating climate change impact on runoff across southeast Australia: method, results, and implications of the modeling method. Water Resources Research. 2009;45(10):W10414. DOI: 10.1029/2008WR007338.
  10. Driessen TLA, Hurkmans RTWL, Terink W, Hazenberg P, Torfs PJJF, Uijlenhoet R. The hydrological response of the Ourthe catchment to climate change as modelled by the HBV model. Hydrology and Earth System Sciences. 2010;14(14):651–665. DOI: 10.5194/hess-14-651-2010.
  11. Krysanova V, Kundzewicz ZW, Piniewski M. Assessment of climate change impacts on water resources. In: Singh V, editor. Chow’s Handbook of Applied Hydrology. 2nd edition. New York: N. Y. McGraw-Hill Education; 2016. p. 1143–1189.
  12. Labat D, Goddéris Y, Probst JL, Guyot JL. Evidence for global runoff increase related to climate warming. Advances in Water Resources. 2004;27(6):631–642. DOI: 10.1016/j.advwatres.2004.02.020.
  13. Legates DR, Lins HF, McCabe GJ. Comments on «Evidence for global runoff increase related to climate warming» by Labat et al. Advances in Water Resources. 2005;28(12):1310–1315. DOI: 10.1016/j.advwatres.2005.04.006.
  14. Gedney N, Cox PM, Betts RA, Boucher O, Huntingford C, Stott PA. Detection of a direct carbon dioxide effect in continental river runoff records. Nature. 2006;439(7078):835–838.
  15. Bolgov MV, Filippova IA, Osipova NB, Korobkina YA. Factors of hydrological safety under climate changes and anthropogenic impact on water bodies. In: Gadirov FA, Mahmudov YM, Abdullayev ChA, Abou Elseoud A, Angelakis AN, Ali Asghar Semsar, et al., editors. Water resources, hydraulic facilities and the environment. Materials of the International scientific and practical conference; 2017 March 15–16; Baku, Azerbaijan. Part 2. Baku: Mutarjim; 2017. p. 53–58. Russian.
  16. Mahmudov RN. The impact of regional climate change on river regimes. In: National Center for Climate Change. Bulletin No. 1. Baku: National Center for Climate Change; 1998. p. 35–38. Azerbaijani.
  17. Verdiyev RH. Climate changes and their impact on river flow in the Republic of Azerbaijan. In: National Center for Climate Change. Bulletin No. 1. Baku: National Center for Climate Change; 1998. p. 53–54. Azerbaijani.
  18. Verdiyev RH. Water resources of the rivers of the East Caucasus in the context of climate change. Baku: [s. n.]; 2002. 224 p. Russian.
  19. Imanov FA, Hasanova NI, Agayev ZB. Long-term fluctuations of river flow in Azerbaijan. Voprosy geografii. 2018;145: 277–284. Russian.
  20. Imanov FA, Kurbanov ChZ, Hasanova NI. Change of proportion of runoff characteristics of rivers of Azerbaijan. In: Makarieva OM, editor. Third grape readings. The verge of hydrology; 2018 March 28–30; Saint Petersburg, Russia [Internet]. Saint Petersburg: Naukoemkie tekhnologii; 2018. p. 553–557 [cited 2020 January 15]. Available from: http://publishing.intelgr.com/archive/hydrology-facets.pdf. Russian.
  21. Imanov FA, Aliyeva IS. Method for estimating annual underground flow in the rivers of the Greater Caucasus. Water problems: science and technology. 2018;2:17–26. Azerbaijani.
Published
2020-12-29
Keywords: Greater Caucasus, annual runoff, underground runoff, surface runoff, comparison method, climate change, minimum flow
How to Cite
Aliyeva, I. S. (2020). Modern changes of the runoff characteristics of the rivers of the Greater Caucasus. Journal of the Belarusian State University. Geography and Geology, 2, 26-33. https://doi.org/10.33581/2521-6740-2020-2-26-33