Global Warming, Desertification/Degradation, and Droughts in Arid Regions
https://doi.org/10.31857/S2587-5566201913-13
Abstract
Applications of the concept of climatic desertification are considered. They include an approach to a separate assessment of aridization and degradation of arid lands and an approach to identifying “islands” of desertification from satellite data. It is established that the contribution of anthropogenic land degradation to desertification is confirmed by a significant linear trend of interannual fluctuations of satellite indicators of pasture digression in all the studied arid areas of Russia and Mongolia in the period 2000-2016. Significant trends in the intensification of aridization were characteristic only for a part of arid areas. Because of the excessive pastoral digression in arid areas, “islands” of desertification of anthropogenic origin are formed. The lifetime of such “islands” is determined by human influence and fluctuations in the humidity of the climate. An additional factor in the short-term decline in the life of the “islands” in Mongolia is the catastrophic death of livestock as a result of natural disasters (drought, zuta). The “island” of desertification, of natural origin, is found in the reserved part of the Sonora Desert, where rainy seasons and droughts determine the spread of aridization. Particular attention is paid to the analysis of trends in climatic characteristics. The increase in air temperature occurred in all the areas under study. Negative trends in annual and seasonal precipitation dominated the steppe zone of Russia during the periods 1936-1960 and 1991-2016, when the surface temperature of the North Atlantic was above normal. On the contrary, positive precipitation trends, weakening aridization, were observed in the period 1961-1990, corresponding to a temperature below the norm.
Keywords
About the Author
A. N. ZolotokrylinRussian Federation
Moscow
References
1. Hayes M., Wood D. Standardized Precipitation Index User Guide. WMO-No. 1090. Geneva, 2012. 26 p.
2. Vtoroi otsenochnyi doklad Rosgidrometa ob izmeneniyakh klimata i ikh posledstviyakh na territorii Rossiiskoi Federatsii. [Second Roshydromet Assessment Report on Climate Changes and Its Consequences in Russian Federation]. Moscow: Rosgidromet, 2014. 1000 p.
3. Zolotokrylin A.N. Klimaticheskoe opustynivanie [Climatic Desertification]. Moscow: Nauka Publ., 2003. 246 p.
4. Zolotokrylin A.N., Vinogradova V.V. Relation between climat I cand anthropogenic factors of re-vegetation in the south-east of European Russia. Aridnye Ekosistemy, 2007, vol. 14, no. 33-34, pp. 7-16. (In Russ.).
5. Zolotokrylin A.N., Titkova T.B. A new approachtothe monitoring of desertification centers. Aridnye Ekosistemy, 2011, vol. 1, no. 3, pp. 125-130.
6. Zolotokrylin A.N., Titkova T.B. Satellite climate extremes index of drylands. Aridnye Ekosistemy, 2012, vol. 2, no. 4, pp. 203-208.
7. Zolotokrylin A.N., Vinogradova V.V., Mesh-cherskaya A.V., Strashnaya A. I., Cherenkova Ye. A. Drought and Desertification. In Vtoroi otsenochnyi doklad Rosgidrometa ob izmeneniyakh klimata I ikh posledstviyakh na territorii Rossiiskoi Federatsii [Second Roshydromet Assessment Report on Climate Changes and Its Consequences in Russian Federation]. Moscow: Rosgidromet, 2014, pp. 551-587. (In Russ.).
8. Zolotokrylin A.N., Titkova T.B., Cherenkova Ye.A., Vinogradova V.V. Dynamics of summer moistening and biophysical parameters of arid pastures in the European part of Russia in 2000-2014. Aridnye Ekosistemy, 2016, vol. 22, no. 1 (66), pp. 5-10.
9. Zolotokrylin A.N., Gunin P.D., Titkova T.B., Bazha S.N., Danzhalova E.V., Kazantseva T.I. Diagnosis of the desertification dynamics of arid pastures in Mongolia from observation in key areas and MODIS data. Aridnye Ekosistemy, 2016, vol. 6, no. 3, pp. 149-157.
10. Zolotokrylin A.N., Cherenkova E.A., Titkova T.B. Bioclimatic subhumid zone of Russian plains: droughts, desertification, and land degradation. Aridnye Ekosistemy, 2018, vol. 8, no. 1, pp. 7-12.
11. Zolotokrylin A.N., Bazha S.N., Titkova T.B., Syrtypova S.H. Trends in livestock numbers and spectral properties of the pasture surface: case study of the Middle Gobi aimag of Mongolia. Aridnye Ekosistemy, 2018, vol. 8, no. 3, pp. 153-160.
12. Zonn I.S., Kust G.S., Andreeva O.V. Desertification paradigm: 40 years of development and global efforts. Aridnye Ekosistemy, 2017, vol. 7, no. 3, pp. 131-141.
13. Kulik K.N., Rulev A.S., Yuferev V.G. Geoinformation analysis of desertification hotspots in Astrakhan oblast. Aridnye Ekosistemy, 2013, vol. 3, no. 3, pp. 184-190.
14. Kulik K.N., Petrov V.I., Rulev A.S., Kosheleva O.Yu., Shinkarenko S.S. On the 30th Anniversary of the “General Plan to Combat Desertification of Black Lands and Kizlyar Pastures”. Aridnye Ekosistemy, 2018, vol. 8, no. 1, pp. 1-6.
15. Petrov K.M., Bananova V.A., Lazareva V.G., Unagaev A.S. Regional features of the global desertification process in the North-Western Caspian region. Mezhdistsiplinarnyi Nauchn. Prikladnoi Zhurnal “Biosfera”, 2016, vol. 8, no. 1, pp. 49-62. (In Russ.).
16. Sapanov M.K. Environmental implications of climate warming for the Northern Caspian region. Aridnye Ekosistemy, 2018, vol. 24, no. 1 (74), pp. 13-21.
17. Cherenkova Ye.A. Dangerous atmospheric drought in the European part of Russia in the conditions of modern summer warming. Fundamentalnaya i Prik-ladnaya Klimatologiya, 2017, no. 2, pp. 130-143. (In Russ.).
18. Desertification Atlas of Mongolia. Ulaanbaatar, 2014. 133 p.
19. Brito-Castillo L., Douglas A.V., Leyva-Contreras A., Lluch-Belda D. The effectoflargescale circulation on precipitation and stream flow in the Gulf of California continental watershed. Int. J. Climatol., 2003, no. 23, pp. 751-768.
20. Hermann S.M., Anyamba A, Tucker C.J. Recent trends invegetation dynamics in the African Saheland their relationship to climate. Global Environ. Change, 2005, no. 5, pp. 394-404.
21. Malkus J.S., Stern M.E. The flowofas table atmosphere overa Heated Islands: Pt I. J. Meteorol., 1953, vol. 10, no. 2, pp. 30-41.
22. Mortimore M., Anderson S., Cotula L., Davies J., Fasser K., Hesse C., Morton J., Nyangena W., Skinner J., Wolfangel C. Dryland opportunities: A new paradigm for people, ecosystems and development. Switzerland: Gland, 2009. 86 p.
23. Otterman J. Baringhigh-albedosoils by over grazing: Hypo the sized desertification mechanism. Science, 1974, vol. 186, no. 4163, pp. 531-533.
24. Thornthwaite C.W. The climates of North America. Geograph. Rev., 1931, no. 21(3), pp. 633-655.
25. United Nations Convention to Combat Desertification (UNCCD). Bonn, Germany, 1994.
Graphical Abstract
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1. «Острова» опустынивания на территории Северо-Западного Прикаспия: а — 1985–1991 гг.; б — 2011–2017 гг. | |
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2. “Islands” of desertification on the territory of the North-Western Caspian Region: a – the period 1985–1991; b – the period 2011–2017 | |
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Type | Исследовательские инструменты | |
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- Multidirectional within-century trends of annual precipitation, which are typical for arid regions of Russia and Mongolia, limit systematic enhancement of aridization in conditions of global warming.
- Desertification is mainly caused by an increased anthropogenic degradation of arid pastures, followed by the formation of mesoscale ‘islands’ of desertification.
- The lifespan of the anthropogenic ‘islands’ of desertification depends on fluctuations in the humidity of the climate and grazing intensity, which also decreases in periods of natural disasters (drought, dzud) as result of livestock death.
Review
For citations:
Zolotokrylin A.N. Global Warming, Desertification/Degradation, and Droughts in Arid Regions. Izvestiya Rossiiskoi Akademii Nauk. Seriya Geograficheskaya. 2019;(1):3-13. (In Russ.) https://doi.org/10.31857/S2587-5566201913-13