Have a personal or library account? Click to login
Sedimentary texture of crevasse splays formed by present-day and palaeofloods against the background of floodplain geomorphology and lithofacies exposed in channel cut banks (in the Vistula River valley between Warsaw and Płock, Poland) Cover

Sedimentary texture of crevasse splays formed by present-day and palaeofloods against the background of floodplain geomorphology and lithofacies exposed in channel cut banks (in the Vistula River valley between Warsaw and Płock, Poland)

Open Access
|Oct 2023

References

  1. Balogh, M, Kiss, T, Fiala, K & Fehervary, I 2020, ‘Floodplain forms along the lowland Maros River Hungary’, Geographia Polonica, vol. 93, no. 1, pp. 51–68.
  2. Bihałowicz, JS & Wierzbicki, G 2021, ‘Rivers Try Harder. Reversed “Differential Erosion” as Geological Control of Flood in the Large Fluvial Systems in Poland’, Water, vol. 13, no. 424, pp. 1–16.
  3. Bridge, JS 2003, “Rivers and floodplains”: Forms, processess, and sedimentary record, Blackwell, Oxford.
  4. Brinkmann, WLF, Magnuszewski, A & Zober, S 2000, ‘The structure and function of the Vistula River floodplain near Plock, Poland’, Ecological Engineering, vol. 16, no. 1, pp. 159–166.
  5. Chormański, J & Mycielska-Dowgiałło, E 1996, ‘Ewolucja doliny Wisły od Kępy Polskiej do Płocka w okresie ostatniego zlodowacenia i holocenu’ [‘Evolution of Vistula valley along Kępa Płocka-Płock section during the last glaciation and the Holocene’]’ in Ekologiczne podstawy zagospodarowania dolin rzecznych (na przykładzie Wisły pod Płockiem) [Ecological principles of river valleys management (case study of the Vistula River near Płock)], eds E Bajkiewicz-Grabowska & Z Mikulski, Towarzystwo Naukowe Warszawskie, Warszawa, pp. 97–112.
  6. Falkowska, E & Falkowski, T 2015, ‘Trace metals distribution pattern in floodplain sediments of a lowland river in relation to contemporary valley bottom morphodynamics’, Earth Surface Processes and Landforms, vol. 40, no. 7, pp. 876–887.
  7. Falkowska, E, Falkowski, T, Tatur, A & Kałmykow-Piwińska, A 2016, ‘Floodplain morphodynamics and distribution of trace elements in overbank deposits, Vistula River Valley Gorge near Solec nad Wisłą, Poland’, ActaGeologica Polonica, vol. 66, no. 3, pp. 541–559.
  8. Falkowski, E 1967, ‘Ewolucja holoceńskiej Wisły na odcinku Zawichost-Solec i inżyniersko-geologiczna prognoza jej dalszego rozwoju’ [‘Evolution of Vistula along Zawichost-Solec section during the Holocene and engineering-geologic prognosis of its future development’], Biuletyn Instytytu Geologicznego, vol. 198, no. 4, pp. 57–131.
  9. Falkowski, E 1975, ‘Variability of channel processes of lowland rivers in Poland and changes of valley floors during the Holocene’, Biuletyn Geologiczny Uniwersytetu Warszawskiego, vol. 19, pp. 45–78.
  10. Falkowski, T & Górka, M 2009, ‘Struktury sedymentacyjne współczesnych osadów rzecznych i ich przydatność w projektach zagospodarowania dolin na Niżu Polskim’, Nauka Przyroda Technologie, vol. 3, no. 3, pp. 1–8.
  11. Florek, E, Florek, W & Mycielska-Dowgiałło, E 1987, ‘Morphogenesis of the Vistula valley between Kępa Polska and Płock in the late Glacial and Holocene’ in Evolution of the Vistula River valley during the last 15 000 years, ed. L Starkel, Geographical Studies 4(II), Wrocław, pp. 189–205.
  12. Folk, RL & Ward, WC 1957, ‘Brazos River bar: a study of significance of grain size parameters’ Journal of Sedimentary Petrology, vol. 27, pp. 3–26.
  13. Forysiak, J, Okupny, D, Obremska, M, Antczak-Orlewska, O, Płóciennik, M, Pawłowski, D, Baradyn, D, Kotrys, B, Luoto, TP, Nevalainen, L & Borówka, R 2023, ‘Changes in habitat conditions in a Late Glacial fluviogenic lake in response to climatic fluctuations (Warta River valley, central Poland)’ Geological Quarterly, vol. 67, no. 1, pp. 1–23.
  14. Gębica, P & Sokołowski, T 2001, ‘Sedimentological interpretation of crevasse splays formed during the extreme 1997 flood in the upper Vistula river valley (south Poland)’, Annales Societatis Geologorum Poloniae, vol. 71, pp. 53–62.
  15. Kiss, T, Sipos, G & Vass, RH 2022, ‘Alluvial ridge development and structure: Case study on the Upper Tisza, Hungary’, Geographica Pannonica, vol. 26, no. 3, pp. 230–240.
  16. Kondracki, J & Richling, A 1994, Atlas Rzeczypospolitej Polskiej [Atlas of the Republic of Poland], GGK, Warszawa.
  17. Korus, JT & Joeckel, RM 2023, ‘Exhumed fluvial landforms reveal evolution of late Eocene–Pliocene rivers on the Central and Northern Great Plains, USA’, Geosphere, vol. 19, no. 3, pp. 695–718.
  18. Lehotský, M, Novotný, J, Szmańda, JB & Grešková, A 2010a, ‘A suburban inter-dike river reach of a large river: Modern morphological and sedimentary changes (the Bratislava reach of the Danube River, Slovakia)’, Geomorphology, vol. 117, no. 3–4, pp. 298–308.
  19. Lehotský, M, Szmańda, JB & Novotný, J 2010b, ‘Response of the Danube River floodplain to flood events during 2002–2007 period’, Quaestiones Geographicae, vol. 29, no. 3, pp. 37–45.
  20. Lóczy, D, Pirkhoffer, E & Gyenizse, P 2012, ‘Geomorphometric floodplain classification in a hill region of Hungary’, Geomorphology, vol. 147–148, pp. 61–72.
  21. Miall, AD 1985, ‘Architectural-element analysis: A new method of facies analysis applied to fluvial deposits’, Earth-Science Reviews, vol. 22, no. 4, pp. 261–308.
  22. Mycielska-Dowgiałło, E & Ludwikowska Kędzia, M 2011, ‘Alternative interpretations of grain size data from Quaternary Deposits’, Geologos, vol. 17, no. 4, pp. 189–203.
  23. Mycielska-Dowgiałło, E & Woronko, B 2004, ‘The degree of aeolization of Quaternary deposits in Poland as a tool for stratigraphic interpretation’, Sedimentary Geology, vol. 168, pp. 149–163.
  24. Myślińska, E 2010, Laboratoryjne badania gruntów i gleb [Laboratory testing of grounds and soils], Wydawnictwo Uniwersytetu Warszawskiego, Warszawa.
  25. Ostrowski, P, Falkowski, T & Utratna-Żukowska, M 2021, ‘The effect of geological channel structures on floodplain morphodynamics of lowland rivers: A case study from the Bug River, Poland’, CATENA, vol. 202
  26. Paola, C 2003, ‘Floods of record’, Nature, vol. 425, no. 450
  27. Prószyński M 1949, Sposób rozbioru uziarnienia gruntu (gleby) [A method of analysis of grain size compostion of ground (soil)], Mikrotechnika, Warszawa.
  28. Skolasińska, K 2014, ‘Inquiry of levee formation by grain size analysis — A case study from the Warta River (central Poland)’, CATENA, vol. 122, pp. 103–110.
  29. Skolasińska, K, Szczuciński, W, Mitręga, M, Jagodziński, R & Lorenc, S 2014, ‘Sedimentary record of 2010 and 2011 Warta River seasonal floods in the region of Poznań, Poland’, Geological Quarterly, vol. 59, no. 1, pp. 47–60.
  30. Smith, GHS, Best, JL, Ashworth, PJ, Lane, SN, Parker, NO, Lunt, IA, Thomas, RE & Simpson, CJ 2010, ‘Can we distinguish flood frequency and magnitude in the sedimentological record of rivers?’ Geology, vol. 38, no. 7, pp. 579–582.
  31. Sokołowski, T, Wacnik, A, Woronko, B & Madeja J 2014, ’Eemian–Weichselian Pleniglacial fluvial deposits in S Poland (an example of the Vistula River valley in Kraków)’, Geological Quarterly, vol. 58, no. 1, pp. 71–84.
  32. Szmańda, JB 2011, ‘Record of depositional conditions in grain size compostion of overbank deposits’, Landform Analysis, vol. 18, pp. 3–97.
  33. Szmańda, JB 2018, ‘Main determination of the grain size distribution of overbank deposits in Poland – an overview of literature on models of sedimentation’, Geological Quarterly, vol. 62, no. 4, pp. 873–880.
  34. Tylmann, K, Rinterknecht, VR, Woźniak, PP, Guillou, V & ASTER Team 2022, ‘Asynchronous dynamics of the last Scandinavian Ice Sheet along the Pomeranian ice-marginal belt: A new scenario inferred from surface exposure 10Be dating’, Quaternary Science Reviews, vol. 294, article number 107755.
  35. Weckwerth, P 2011, ‘Palaeoslopes of Weichselian sand-bed braided rivers in the Torun Basin (Poland): results of a palaeohydraulic analysis’, Geologos, vol. 17, no, 4, pp. 227–238.
  36. Weckwerth, P, Greń, K & Sobota, I 2019, ‘Controls on downstream variation in surficial sediment size of an outwash braidplain developed under high Arctic conditions updates (Kaffioyra, Svalbard)’, Sedimentary geology, vol. 387, pp. 75–86.
  37. Weckwerth, P, Kalińska, E, Wysota, W, Krawiec, A, Adamczyk, A & Chabowski, M 2022, ‘What does transverse furrow train in scabland-like topography originate from? The unique records of upper-flow-regime bedforms of a glacial lake-outburst flood in NE Poland’, Quaternary International, vol. 617, pp. 40–58.
  38. Wierzbicki, G & Mazgajski M 2011, ‘Ice-jam flooding of the Vistula River in the Warszawa Basin during February and March 2010’, Scientific Review – Engineering and Environmental Sciences, vol. 51, pp. 52–60. (in Polish with English summary)
  39. Wierzbicki, G, Ostrowski, P, Mazgajski, M & Bujakowski, F 2013, ‘Using VHR multispectral remote sensing and LIDAR data to determine the geomorphological effects of overbank flow on a floodplain (the Vistula River, Poland)’. Geomorphology, vol. 183, pp. 73–81.
  40. Wierzbicki, G, Ostrowski, P, Falkowski, T & Mazgajski, M 2018, ‘Geological setting control of flood dynamics in lowland rivers (Poland)’, Science of the Total Environment, vol. 636, pp. 367–382.
  41. Wierzbicki, G, Ostrowski, P & Falkowski, T 2020, ‘Applying floodplain geomorphology to flood management (The Lower Vistula River upstream from Plock, Poland)’, Open Geosciences, vol. 12 pp. 1003–1016.
  42. Wierzbicki, G, Grygoruk, M, Grodzka-Łukaszewska, M, Bartold, P & Okruszko, T 2020, ‘Mire Development and Disappearance due to River Capture as Hydrogeological and Geomorphological Consequences of LGM Ice-Marginal Valley Evolution at the Vistula-Neman Watershed’, Geosciences, vol. 10, no. 363.
  43. Zawadzka-Pawlewska, U & Tsermegas, I 2017, ‘Olęder settlement impact on morphology of the Vistula river floodplain. Kępa Kiełpińska case study’, Landform Analysis, vol. 33, pp. 49–56.
  44. Zieliński, T 1998, ‘Litofacjalna identyfikacja osadów rzecznych’ [‘Lithofacial identification of fluvial deposits’] in Struktury sedymentacyjne i postsedymentacyjne w osadach czwartorzędowych i ich wartość interpretacyjna [Sedimentary and postsedimantary structures in Quaternary deposits and their interpretive value], ed. E Mycielska-Dowgiałło, Wydział Geografii i Studiów Regionalnych, Uniwersytet Warszawski, Warszawa, pp. 195–257.
  45. Zieliński, T & Pisarska-Jamroży, M 2012, ‘Which features of deposits should be included in a code and which not?’, Przegląd Geologiczny, vol. 60, pp. 387–397.
DOI: https://doi.org/10.2478/mgrsd-2023-0030 | Journal eISSN: 2084-6118 | Journal ISSN: 0867-6046
Language: English
Page range: 180 - 196
Submitted on: Sep 29, 2023
Accepted on: Oct 31, 2023
Published on: Oct 31, 2023
Published by: Faculty of Geography and Regional Studies, University of Warsaw
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2023 Grzegorz Wierzbicki, Marcin Górka, Piotr Ostrowski, Agnieszka Kałmykow-Piwińska, Tomasz Falkowski, published by Faculty of Geography and Regional Studies, University of Warsaw
This work is licensed under the Creative Commons Attribution 4.0 License.