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Development of the Edge of the Gully in the Zone Adjacent to the Field

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Języki publikacji
EN
Abstrakty
EN
The development of the side arm edge of the valley-gully in Gałkowice village in the Dwikozy commune (the Opatówka catchment in the Sandomierz Upland) was investigated during the period from 2002 to 2017. An increase of fragmentation of the gully edge was found. Most of the pre-existing erosive indents increased in size (maximum of 2.8 m – about 0.2 m per year). An increase in the area of the gully by 145 m2 was found. As a result, the boundary of plow tillage shifted to an average of 1.5 to 2 meters (maximum 3.8 m), which resulted in a loss of 545 m2 of adjacent arable land. As the main reason for the development of the analyzed section of the gully, meltwater flows were considered.
Słowa kluczowe
Rocznik
Strony
238--244
Opis fizyczny
Bibliogr. 32 poz., rys.
Twórcy
  • Department of Environmental Engineering and Geodesy, University of Life Sciences in Lublin, ul. Leszczyńskiego 7, 20-069 Lublin, Poland
  • Department of Environmental Engineering and Geodesy, University of Life Sciences in Lublin, ul. Leszczyńskiego 7, 20-069 Lublin, Poland
  • Department of Environmental Engineering and Geodesy, University of Life Sciences in Lublin, ul. Leszczyńskiego 7, 20-069 Lublin, Poland
  • Department of Environmental Engineering and Geodesy, University of Life Sciences in Lublin, ul. Leszczyńskiego 7, 20-069 Lublin, Poland
  • Department of Environmental Engineering and Geodesy, University of Life Sciences in Lublin, ul. Leszczyńskiego 7, 20-069 Lublin, Poland
Bibliografia
  • 1. Andruszkiewicz A. 1973. Genesis and development of gully forms in the central basin of Opatówka. Prace i St. IGUW, 14, Geogr. Fiz. 5, 101-121. (in Polish)
  • 2. Buraczyński J., Wojtanowicz J. 1974. Development of loess ravines near Dzierzkowice in the Lublin Upland under the influence of a heavy downpour in June 1969. Annales UMCS, B, 26, 135-168. (in Polish)
  • 3. Casalí, J., Loizu, J., Campo, M.A., De Santisteban, L.M., and A’lvarez-Mozos, J. 2006. Accuracy of methods for field assessment of rill and ephemeral gully erosion. Catena, 67, 128-138.
  • 4. Cerdan O., Le Bissonnais Y., Couturier A., Bourennane H., Souchere V. 2002. Rill erosion on cultivated hillslopes during two extreme rainfall events in Normandy, France. Soil Tillage Res., 67(1), 99-108.
  • 5. Czarnecki R. 1996. Sandomierz Upland. The eastern part. Published by the author’s own effort, Warsaw. (in Polish)
  • 6. Daggupati P., Sheshukov A.Y., Douglas-Mankin K.R. 2014. Evaluating ephemeral gullies with a process-based topographic index model. Catena, 113, 177–186.
  • 7. Dotterweich M. 2008. The history of soil erosion and fluvial deposits in small catchments of central Europe: Deciphering the long-term interaction between humans and the environment. Geomorpgology, 101, 192-208.
  • 8. Dylikowa A. 1973. Geography of Poland, geographical regions Wyd. Państwowe Zakłady Wydawnictw Szkolnych. Warszawa. (in Polish)
  • 9. Echeverría M.T., Ibarra P., Pérez-Cabello F. 2007. Agricultural land use, piping and gullies activity in the Huelva lower valley (Saragossa, Spain). Casalí J. and Giménez R. (Eds.): Progress in Gully Erosion Research. Universidad Pública de Navarra, Spain. 44-45.
  • 10. Fox G.A., Sheshukov A.Y., Cruse R., Kolar R.L., Guertault L., Gesch K.R., Dutnell R.C. 2016. Reservoir Sedimentation and Upstream Sediment Sources: Perspectives and Future Research Needs on Streambank and Gully Erosion. Environ. Manag., 57, 945–955.
  • 11. Józefaciuk Cz., Józefaciuk A. 1992. Density of the gully network in the physiographic provinces of Poland. Pam. Puł., 101 (supl.), 5-23. (in Polish)
  • 12. Kirkby M.J. 2007. Gully dynamics: initiation and morphology (Keynote). In. Casalí J. and Giménez R. (Eds.): Progress in Gully Erosion Research. Universidad Pública de Navarra, Spain. 64-65.
  • 13. Kolodynska-Gawrysiak R., Poesen J., Gawrysiak L. 2018. Assessment of long-term Holocene soil erosion rates in Polish loess areas using sedimentary archives from closed depressions. Earth Surface Processes and Landforms. 43 (5), 978-1000.
  • 14. Kosmowska-Suffczyńska D. 1983. Influence of human activity on the rate of growth of alluvial in valleys and changes in the landscape on the example of the Czyżówka valley (Sandomierz Upland). Prace i Studia Geogr. UW, 4, 69-78. (in Polish)
  • 15. Maruszczak H. 1988. Changes of the natural environment of the country in historical times. In. Starkel L. (ed.): Transformation of the geographical environment of Poland. Wszechnica PAN, 109-135. (in Polish)
  • 16. Mazur Z. 1963. Water erosion of soils in the Opatówka river basin Wiad. IMUZ, 3, (2), 7-20. (in Polish).
  • 17. Miczyński J. Siwecka M. 2012. Climate change in Sandomierz in 1971 – 2006. Inż. Ekol., 30, 97-118. (in Polish)
  • 18. Nowocień E. 2006. Antierosion melioration in the process of management of rural areas. In: Woch F. (Ed.) Comprehensive consolidation of agricultural and forest land and its impact on the environment. Mat. szkol. Nr 93. IUNG-PIB Puławy, 156-159. (in Polish)
  • 19. Onyelowe K.C., Bui Van D., Ikpemo O.C., Ubachukwu O.A., Van Nguyen, M. 2018. Assessment of rainstorm induced sediment deposition, gully development at Ikot Ekpene, Nigeria and the devastating effect on the environment. Environmental Technology and Innovation, 10, 194-207.
  • 20. Oparaku L.A., Oluwaseun D.A., Ogbeh G.O. 2018. Anthropogenic factors influencing the development of gullies on the Idah-Ankpa Plateau of north central Nigeria. Journal of Soil and Water Conservation, 73 (4), 90A-95A
  • 21. Pałys S., Węgorek T. 1998. Loess gulies as a peculiarity of Sandomierz region. In: Puszkar T. (Ed.) Peculiarities of the nature of the Sandomierz Land. Wyd. Diecezjalne w Sandomierzu, 21-29. (in Polish)
  • 22. Patro M., Węgorek T. 2001. Ways of managing of gullies in the conditions of structural changes in agriculture. Inżynieria Ekologiczna, 5, 109-116. (in Polish).
  • 23. Rodzik J. 2008. The impact of heavy rain and thaw on the development of the loess gully. Landform Analysis, 8, 56-59. (in Polish)
  • 24. Rodzik J., Furtak T., Zgłobicki W. 2009. The impact of snowmelt and heavy rainfall runoff on erosion rates in a gully system, Lublin Upland, Poland. Earth Surf. Proces. Landforms, 34, 1938-1950.
  • 25. Rybicki R. 2006. Development of land threatened by erosion in the light of sustainable agriculture. Inżynieria Rolnicza. 6 (81), 231-237. (in Polish)
  • 26. Rybicki R. 2009. Change of use of eroded loess soils on example of the Opatówka catchment microbasin. Zesz. Probl. Post. Nauk Roln. 535, 365-371. (in Polish)
  • 27. Valentin C., Poesen J., Li Y. 2005. Gully erosion: Impacts, factors and control. Catena, 63 (2), 132-153.
  • 28. Woś A. 1993. Climate regions of Poland in the light of the frequency of different types of weather. Zesz. Instytutu Geografii i Przestrzennego Zagospodarowania PAN Warszawa. (in Polish)
  • 29. Zegeye A.D., Langendoen E.J., Guzman C.D., Dagnew D.C, Amare S.D, Tilahun S.A., Steenhuis T.S. 2018. Gullies, a critical link in landscape soil loss: A case study in the subhumid highlands of Ethiopia. Land Degradation and Development, 29 (4), 1222-1232.
  • 30. Zhang, Y.; Wu, Y.; Liu, B.; Zheng, Q.; Yin, J. 2007. Characteristics and factors controlling the development of ephemeral gullies in cultivated catchments of black soil region, Northeast China. Soil Tillage Res., 96, 28–41.
  • 31. Zhao G., Mu X., Wen Z., Wang F., Gao P. 2013. Soil erosion, conservation, and eco-environment changes in the loess plateau of china. Land Degradation and Development, 24 (5), 499-510.
  • 32. Zgłobicki W., Rodzik J., Superson J., Dotterweich M., Schmitt A. 2014. Phases of gully erosion in the Lublin Upland and Roztocze region. Annales UMCS, B, LXIX, 149-162.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0c500ab1-0a20-4b28-b6c4-6a6cf80db8c9
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