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About the Authors
Fedor N. Lisetskii
85, Pobedy str., Belgorod, 308015, Russia,
E-mail: liset@bsu.edu.ru
Zhanna A. Buryak
85, Pobedy str., Belgorod, 308015, Russia,
E-mail: buryak@bsu.edu.ru
Pavel A. Ukrainskiy
85, Pobedy str., Belgorod, 308015, Russia,
E-mail: ukrpa@mail.ru
Abstract
Modern studies of directional climate change, which are aimed at identifying the heterogeneity of trends both over territory and over time, actively use spatial analysis and mapping results to overcome the problem of converting discrete data from a limited number of meteorological stations into a conditional continuum surface. The purpose of the work was to use geoinformation technologies to establish spatial patterns of distribution of climatic energy costs for soil formation on the territory of the Crimean Peninsula across three time slices: for two 30-year periods of climate norms that were established by the World Meteorological Organization (1961–1990 and 1991–2020) and the retrospective stage (before 1960). Meteorological data on heat and moisture supply indicators were integrated into the calculated values of climatic energy costs for soil formation for irregularly located weather stations and then converted into grapho-mathematical abstractions of the spatial distribution of the estimated parameter using the Tension Spline method. The results of mapping the spatial distribution of climatic energy costs for soil formation showed that they increased over two 30-year periods (1961–1990 and 1991–2020) compared to the previous stage by 8 % and 10 %, respectively. Moreover, for the modern period (1991–2020), with a general increase in energy costs for soil formation by 72 % of the area of the Crimean Peninsula, territorial differences in its individual parts were established. If in the center and southeast of the peninsula a significant increase in the energy potential of the climate was noted, then on the southern coast (east of Yalta), on the contrary, a decrease in this indicator was noted. The results obtained and assessments of the energy potential of the climate over the past 30 years create an information basis for determining the effectiveness of soil renaturation in the regimes of post-agrogenic development and rehabilitation agriculture.
Keywords
References
- Agroclimatic reference book for the Crimean Region. Leningrad: Gidrometeoizdat, 1959. 136 p. (in Russian).
- Atlas. Autonomous Republic of Crimea. Kyiv–Simferopol, 2004. 80 p. (in Russian/Ukrainian).
- Baeva Yu.I., Kurganova I.N., Lopes de Gerenyu V.O., Telesnina V.M. Comparative assessment of carbon content in postagrogenic soils of various natural climatic zone. Environmental monitoring and ecosystem modeling, 2017. V. 28. No. 2. P. 27–39 (in Russian). DOI: 10.21513/0207-2564-2017-2-27-39.
- Budyko M.I. Climate and life. Leningrad: Gidrometeoizdat, 1971. 472 p. (in Russian).
- Buryak Zh.A., Krymskaya O.V., Krymskaya A.A., Terekhin E.A. Spatiotemporal variability of the bioclimatic potential in the Central Chernozem Region. Uchenye Zapiski Kazanskogo Universiteta. Seriya: Estestvennye Nauki (Proceedings of Kazan University. Natural Sciences Series), 2024. V. 166. No. 1. P. 126–144 (in Russian). DOI: 10.26907/2542-064X.2024.1.126-144.
- Buryak Zh.A., Terekhin E.A. Geoinformation modeling of spatio-temporal variability of agroclimatic conditions. Regional Geosystems, 2020. V. 44. No. 3. P. 333–342 (in Russian). DOI: 10.18413/2712-7443-2020-44-3-333-342.
- Climatic atlas of Crimea. Appendix to the scientific-practical discussion and analytical collection “Issues of Crimea’s Development”. Simferopol: Tavria-Plus, 2000. 120 p. (in Russian).
- Eniolorunda N. Climate change analysis and adaptation: The role of remote sensing (RS) and geographical information system (GIS). International Journal of Computational Engineering Research, 2014. V. 4. No. 1. P. 41–51.
- Ergina E.I. Climatic conditionality of the soil formation process in Crimea. Bulletin of Odessa National University. Geographical and Geological Sciences, 2008. V. 13. No. 6. P. 73–78 (in Russian).
- Ergina E.I., Mykhaylov V.A. Spatial regularities of changes in the agrolandscapes of lowland and foothill Crimea. Scientific foundations of agriculture in connection with climate warming. Mykolayv, 2010. P. 253–255 (in Russian).
- Gabriele M., Brumana R., Previtali M., Cazzani A. A combined GIS and remote sensing approach for monitoring climate change-related land degradation to support landscape preservation and planning tools: The Basilicata case study. Applied Geomatics, 2023. V. 15. No. 3. P. 497–532.
- Gorbunov R.V. Functioning and dynamics of regional geoecosystems under conditions of climate change (using the example of the Crimean Peninsula). Moscow: KMK Scientific Press Ltd., 2022. 191 p. (in Russian).
- Grigoriev A.A., Budyko M.I. Relationship between heat and moisture balances and the intensity of geographic processes. Reports of the USSR Academy of Sciences, 1965. V. 162. No. 1. P. 151–154 (in Russian).
- Handbook on the climate of the USSR. Leningrad: Gidrometeoizdat, 1969. V. 10. Iss. 4. P. 253. (in Russian).
- Ivanov N.N. Landscape and climatic zones of the globe. Notes of geographical societies, 1949. V. 1. P. 3–224 (in Russian).
- Ivlieva N.G., Manukhov V.F., Shaykunova R.B. About the experience of GIS technologies application for the study of changes of the mean annual air temperature on the territory of the European part of Russia. InterCarto. InterGIS. GI support of sustainable development of territories: Proceedings of the International conference. Moscow: Moscow University Press, 2019. V. 25. No. 2. P. 121–132 (in Russian). DOI: 10.35595/2414-9179-2019-2-25-121-132.
- Kaganov V.V., Kurganova I.N. Evaluation of organic matter mineralization rate in main soil types of Russian European Part under different temperature regimes. Belgorod State University Scientific Bulletin. Series: Natural sciences, 2011. No. 15 (110). P. 145–153 (in Russian).
- Karmanov I.I. Soil fertility of the USSR: Natural patterns and quantitative assessment. Moscow: Kolos, 1980. 224 p. (in Russian).
- Korsakova S. Impact of climate change on the grape productivity in the Southern coast of the Crimea. Berlin–Heidelberg, Springer: Challenges and opportunities in agrometeorology, 2011. P. 385–396.
- Kurbasova G.S., Korsakova S.P., Rybalova M.N., Shlikar’ G.N. Spatiotemporal relationships in the structure of the 80-year time series of observations of local surface air temperatures. Bulletin of the Crimean Astrophysical Observatory, 2012. V. 108. No. 1. P. 140–145.
- Lisetskii F., Chepelev O. Quantitative substantiation of pedogenesis model key components. Advances in Environmental Biology, 2014. V. 8. No. 4. P. 996–1000.
- Lisetskii F.N., Ergina E.I. Soil development on the Crimean Peninsula in the Late Holocene. Eurasian Soil Science, 2010. V. 43. No. 6. P. 601–613. DOI: 10.1134/S1064229310060013.
- Lisetskii F.N., Marinina O.A., Buryak Zh.A. A geoarchaeological survey of the historical landscapes of Crimea. Voronezh: VSU Publishing House, 2017. 432 p. (in Russian).
- Lisetskii F., Pichura V. Steppe ecosystem functioning of East-European plain under age-long climatic change influence. Indian Journal of Science and Technology, 2016. V. 9. Iss. 18. P. 1–9. DOI: 10.17485/ijst/2016/v9i18/93780.
- Lisetskii F.N., Stolba V.F., Pichura V.I. Periodicity of climatic, hydrological and lacustrine sedimentation processes in the south of the East-European Plain. Regional Environmental Issues, 2013. No. 4. P. 19–25 (in Russian).
- Lisetskii F.N., Stolba V.F., Pichura V.I. Late-Holocene palaeoenvironments of Southern Crimea: Soils, soil-climate relationship and human impact. The Holocene, 2017. V. 27. Iss. 12. P. 1859–1875. DOI: 10.1177/0959683617708448.
- Logvynova K.T., Barabash M.B. Climate and dangerous hydrometeorological phenomena of Crimea. Leningrad: Gidrometeoizdat, 1982. 320 p. (in Russian).
- Parubets O.V. Analysis of climatic series of the Crimean Peninsula. Ecosystems, their optimization and protection, 2009. No. 20. P. 154–164 (in Russian).
- Penyugalov A.V. Climate of Crimea. Experience of climatic zoning. Simferopol: Krymgosizdat, 1930. 178 p. (in Russian).
- Poddubsky A.A. Assessment of the natural moisture supply of the Moscow Region. RUDN Journal of Agronomy and Animal Industries, 2015. No. 2. P. 45–50 (in Russian).
- Pozachenyuk E.A., Shumsky V.M., Lesov A.M. et al. Contemporary landscapes of Crimea and neighboring waters. Simferopol: Biznes-inform, 2009. 672 p. (in Russian).
- Prăvălie R. Climate issues on aridity trends of southern Oltenia in the last five decades. Geographia Technica, 2013. V. 17. No. 1. P. 70–79.
- Rybalko E.A., Baranova N.V., Borisova V.Yu. Regularities of the spatial variation of the Huglin index in the conditions of the Crimean Peninsula. Winemaking and viticulture, 2020. No. 1. P. 18–23 (in Russian).
- Rybalko E.A., Baranova N.V., Borisova V.Yu. Distribution of the sum of temperatures above 20°С on the territory of the Crimean Peninsula. Fruit growing and viticulture of South Russia, 2021. No. 3. P. 86–100 (in Russian). DOI: 10.30679/2219-5335-2021-3-69-86-100.
- Selyaninov G.T. The methodology of rural climate characteristics. World agroclimatic reference book. Leningrad: Gidrometeoizdat, 1957 (in Russian).
- Shashko D.I. Agroclimatic resources of the USSR. Leningrad: Gidrometeoizdat, 1985. 248 p. (in Russian).
- Shirokov R.S., Vasiliev A.A. Using GIS technologies to create a scientific and information geoecological base in Western Yamal to identify the effects of climate change. IOP Conference Series: Earth and Environmental Science, 2020. V. 579. No. 1. P. 012154.
- Shvebs A.V. Influence of slope exposure on moisture reserves in the soil. Proceedings of the Odessa HMI, 1960. Iss. 22. P. 49–57 (in Russian).
- Stefanovich A.A., Voskresenskaya E.N. Changes in complex bioclimatic indicators in Crimea since the middle of the 20th century. Ekologiya cheloveka (Human Ecology), 2023. No. 1. P. 65–77 (in Russian). DOI: 10.17816/humeco111767.
- Tabunshchik V.A. Depth of the relief dissection on the territory of the Crimean Peninsula. InterCarto. InterGIS. GI support of sustainable development of territories: Proceedings of the International conference. Moscow: Moscow University Press, 2020. V. 26. No. 2. P. 95–105 (in Russian). DOI: 10.35595/2414-9179-2020-2-26-95-105.
- Valkov V.F. Ecological dependence of soil characteristics on climatic factors in the conditions of the North-West Caucasus. Izvestiya of North Caucasus Scientific Center of Higher Education. Natural Sciences, 1982. No. 3. P. 11–14 (in Russian).
- Volobuev V.R. Introduction to the energetics of soil formation. Moscow: Nauka, 1974, 126 p. (in Russian).
For citation: Lisetskii F.N., Buryak Z.A., Ukrainskiy P.A. Geoinformation analysis of climatic conditionality of soil formation in the territory of the Crimea peninsula. InterCarto. InterGIS. GI support of sustainable development of territories: Proceedings of the International conference. Moscow: MSU, Faculty of Geography, 2024. V. 30. Part 2. P. 153–170. DOI: 10.35595/2414-9179-2024-2-30-153-170 (in Russian)