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Spatial Modeling of the Effects of Deflation Destruction of the Steppe Soils of Ukraine

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EN
The decrease in the agricultural efficiency is associated with the influence of wind erosion, the consequence of which is a decrease in the soil fertility. Significant effects of wind erosion are typical of the arid and semi arid zones with a small amount of precipitation, high air temperature and degree of evaporation, reinforced by strong winds and low differentiation of plant protection. It has been proven that the intensity of the effects of deflation processes depends on the physical and geographical conditions of the distribution of agricultural land, systematic soil protection activities and the availability of vegetation. It has been established that the acceleration of the deflation processes occurs in the territories with increased anthropogenic pressure, which leads to ecological disturbance of the natural balance characterizing territorial ecosystems. In the course of the studies it was found that the natural processes of wind erosion are significantly enhanced by the absence of a scientifically-based and ecological land development system of agriculture, which leads to destruction of the soil cover, reduction of soil fertility, damage to the agricultural crops and, thus, the economic damage. As a result of application of the GIS and ERS technologies, the empirical-statistical model of the possible soil loss due to wind erosion in the territory of the Steppe zone of Ukraine, it has been found that in the course of the deflation processes in the territory taken by naked fallow upon the absence of the conditions for the deflation resistance activities, the value of soil loss at the epicenter of dust storms can reach about 600 t / ha. Studies proved the importance of the deflation resistant action of the vegetation cover, which tends to an increase in the erosion dangerous (favorable) areas of agricultural land by 1.7 times, which reduces the soil loss by 5.62 times. In accordance with the intensity of the effects of the deflation processes and the increase of the soil losses, the contour and land development deflation resistance activities with elements of soil protection agriculture were proposed.
Słowa kluczowe
Rocznik
Strony
166--177
Opis fizyczny
Bibliogr. 40 poz., rys., tab.
Twórcy
  • Kherson State Agricultural University, Stritens’ka str. 23, 73006, Kherson, Ukraine
  • Kherson State Agricultural University, Stritens’ka str. 23, 73006, Kherson, Ukraine
  • Kherson State Agricultural University, Stritens’ka str. 23, 73006, Kherson, Ukraine
  • Kherson State Agricultural University, Stritens’ka str. 23, 73006, Kherson, Ukraine
Bibliografia
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  • 2. Bagnold R.A. 1941. The Physics of Blown Sand and Desert Dunes. London, Chapman and Hall: 265 p.
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  • 4. Baliuk S.A., Tymchenko D.O., Hychka M.N. and oth. 2010. Scientific and applied foundations of protection of soils against erosion in Ukraine: monograph. Edited by S.A. Baliuk and L.L. Tovazhnianskyi. Kharkiv: NTU “KPI”: 460 p. (in Ukrainian).
  • 5. Benkobi L., Trlica M.J., Smith J.L. 1994. Evaluation of a refined surface cover subfactor for use in RUSLE. Range Manage, Vol. 47: 74–78.
  • 6. Biesemans J., Meirvenne M.V., Gabriels D. 2000. Extending the RUSLE with the Monte Carlo error propagation technique to predict long-term average off-site sediment accumulationSoil Water Conserv, Vol. 55: 35–42.
  • 7. Bulyhin S.U. 2005. Formation of ecologically resistant agrolandscapes. Kyiv: Urozhai: 300 p. . (in Ukrainian).
  • 8. Chepil W.S. 1950. Properties of soil which influence wind erosion. I. The governing principle of surface roughness. Soil Sci., 69: 149–162
  • 9. Chi W., Zhao Y., Kuang W., He H. 2019. Impacts of anthropogenic land use/cover changes on soil wind erosion in China. Science of the Total Environment, Vol. 668: 204–215
  • 10. Chornyi S.H., Chorna T.M. 2000. Reasons and consequence of dust storm of March 23–24, 2017. Regional problems of Ukraine: Geographical analysis and search of solutions. Kherson: PE Vyshemyrskyi: http://ekhsuir.kspu.edu/handle/123456789/5306 (in Ukrainian).
  • 11. Conception of soil protection against erosion in Ukraine. 2008. Edited by S.A. Baliuk and L.L. Tovazhnianskyi. Kharkiv: NSC “Institute for soil science and agrochemistry”: 53 p. (in Ukrainian).
  • 12. Dehodiuk Ye.H. 2015. Basin approach in biogeocenosis and agrarian sphere in the context of development of farming system in XXI century. Farming. No.2 (889): 21–24. (in Ukrainian).
  • 13. Dudiak N.V., Pichura V.I., Potravka L.A., Stratichuk N.V. 2019. Geomodelling of Destruction of Soils of Ukrainian Steppe Due to Water Erosion. Journal of Ecological Engineering. Vol. 20, Iss. 8.: 192–198.
  • 14. Furdychko O.I. 2014. Ecological fundamentals of balanced development of agrarian sphere in the context of European integration of Ukraine: monograph. Kyiv: DIA:432 p. (in Ukrainian).
  • 15. Furdychko O.I. Stadnyk A.P. 2012. Fundamentals of management of agrolandscapes of Ukraine. Kyiv: Argarian science:384 p. (in Ukrainian).
  • 16. Guo Q., Cheng C., Jiang H., Liu B., Wang Y. 2019. Comparative rates of wind and water erosion on typical farmland at the northern end of the Loess Plateau, China. Geoderma, Vol. 352: 104–115.
  • 17. Jiang Ch., Zhang H., Zhang Zh., Wang D. 2019. Model-based assessment soil loss by wind and water erosion in China’s Loess Plateau: Dynamic change, conservation effectiveness, and strategies for sustainable restoration. Global and Planetary Change, Vol. 172: 396–413.
  • 18. Lisetskii F., Pichura V. 2016. Steppe Ecosystem Functioning of East European Plain under AgeLong Climatic Change Influence. Indian Journal of Science and Technology, Vol. 9(18): 1–9. DOI: 10.17485/ijst/2016/v9i18/93780.
  • 19. Lisetskii F.N., Matsibora A.V., Pichura V.I. 2016. Reconstruction of paleoclimatic conditions of the second half of the Holocene on the results of the study of buried and floodplain soils in the south of the East European Plain. International Journal of Environmental Problems, Vol. 4 (2.): 131–148. DOI: 10.13187/ijep.2016.4.131
  • 20. Lisetskii F.N., Pavlyuk Ya.V., Kirilenko Zh.A., Pichura V.I. 2014. Basin organization of nature management for solving hydroecological problems. Russian Meteorology and Hydrology. Vol. 39 (8): 550–557.
  • 21. Luo W., Zhao W., Zhuang Y. 2018. Sand-burial and wind erosion promote oriented-growth and patchy distribution of a clonal shrub in dune ecosystems. CATENA, Vol. 167: 212–220
  • 22. Lysetskyi F.N., Svetlychnyi A.A., Chornyi S.H. 2012. Modern issues of erosion science. Edited by Svetlychnyi A.A. Bilhorod: Konstanta: 456 p. (in Russian).
  • 23. Mozheiko H.A., Moskalenko V.M., Bulyhin S. Yu., Tymchenko D.O.,Lavrovskyi A.B., Kanash A.P., 1980. Prediction of possible soil loss due to wind erosion in the steppe zone of Ukraine. Kharkiv: ISA named after A.N. Sokolovskyi: 83 p. (in Russian).
  • 24. Pichura V.I. 2016.Spatial prediction of soil erosion risk in the Dnieper river basin using revised universal soil loss equation and GIS-technology. Вісник Житомирського національного агроекологічного університету. No 2(56) т.1:С. 3–11.
  • 25. Pichura V.I. 2017. Zonal patterns of age changes in climate of the territory of Dnipro basin. Dnipropetrovsk State Agrarian and Economic University, No. 2:43–45 p. (in Ukrainian).
  • 26. Pichura V.I., Domaratsky Y.A., Yaremko Yu.I., Volochnyuk Y.G., Rybak V.V. 2017. Strategic Ecological Assessment of the State of the Transboundary Catchment Basin of the Dnieper River Under Extensive Agricultural Load. Indian Journal of Ecology, Vol. 44 (3): 442–450.
  • 27. Poręba G., Śnieszko Z., Moska P., Mroczek P. 2019. Deposits of Neolithic water soil erosion in the loess region of the Małopolska Upland (S Poland) – A case study of the settlement micro-region in Bronocice. Quaternary International, Vol. 502, Part A: 45–59
  • 28. Sameni A., Moosavi A., Mahmoodabadi M., Laurent B. 2019. Portable wind tunnel experiments to study soil erosion by wind and its link to soil properties in the Fars province, Iran. Geoderma, Vol. 333: 69–80
  • 29. Scientific and applied fundamentals of soil protection against erosion in Ukraine: monograph. 2010. Edited by S.A. Baliuk and L.L. Tovazhnianskyi. Kharkiv: NTU “KPI”: 460 p. (in Ukrainian).
  • 30. Shahaev V.L. 2004 Modification of soil protection technologies against wind erosion through designing thatcherizer of couch grass: Dissertation …. Cand. of Tech. Scien.: 05.20.01:Ulan-Ude: 159 p. (in Russian).
  • 31. Shvebs H.I. 1985. Contour farming. Odesa: Maiak: 55 p. (in Russian).
  • 32. Shvebs H.I., Antonova S.O., Ihoshyna V.I., Tsurkan O.I., Esaulov H.I., Ihoshyn M.I. 2003. Protection of soils against erosion destruction in river and water reservoir basin of Ukraine. Bulletin of ONU, Vol. 5(8):116–128p. (in Ukrainian).
  • 33. Sytnyk V.P., Bezyhlyi M.D., Melnyk S. I. and others. 2008 Conception of soil protection against erosion in Ukraine. Kharkiv: 59 p. (in Ukrainian).
  • 34. Tarariko O.H., Kuchma T.L., Ilienko T.V., Demiakiuk O.S. 2017. Erosion degradation of soils of Ukraine under the influence of climate changes. Agroecological journal, No.1: 7–15. (in Ukrainian).
  • 35. Tarariko O.H.,Moskalenko V.M. 2002. Catalogue of activities on optimization of structure of agrolandscapes and soil protection against erosion. Kyiv: Fitosotsiotsentr: 64 p. (in Ukrainian).
  • 36. Van Leeuwen WJD, Sammons G 2004. Vegetation dynamics and soil erosion modeling using remotely sensed data (MODIS) and GIS. Tenth Biennial USDA Forest Service Remote Sensing Applications Conference, 5–9 April 2004, Salt Lake City, UT. US Department of Agriculture Forest Service Remote Sensing Applications Center, Salt Lake City.
  • 37. Voloshchuk M.D. 2016. Erosion degradation of chernozems of southern-western part of Ukraine and Republic of Moldova. Bulletin of Dnipro State Agrarian and Economic University, 4 (24): 41–51. (in Ukrainian).
  • 38. Voloshchuk M.D., Petrenko N.I., Yatsenko S.V. 2014. Scientific and applied fundamentals of protection of soils against erosion in Ukraine: monograph. Erosion of soils in Ukraine: evolution, theory and practice. Kyiv: 327 p. (in Ukrainian).
  • 39. Yhoshyn N.I. 1996. Characteristic of erosion and deflation processes in Ukraine. Collection of reports of anniversary scientific and technical conference “DonSTU – 75 years”:113–125 p. (in Russian).
  • 40. Zingg A.W. 1953. Wind tunnel studies of the movement of sedimentary material. Lowa State Univ. Proc. 5th Hydraulic Conf. Bull., 34: 111–135
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-da37bdc9-3b75-4425-8e4a-982637d03cfc
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