Details

Title

Quaternary stratigraphy and palaeogeography of Poland

Journal title

Acta Geologica Polonica

Yearbook

2016

Volume

vol. 66

Issue

No 3

Authors

Divisions of PAS

Nauki o Ziemi

Publisher

Komitet Nauk Geologicznych PAN ; Wydział Geologii UW

Date

2016

Identifier

DOI: 10.1515/agp-2016-0018 ; ISSN 0001-5709

Source

Acta Geologica Polonica; 2016; vol. 66; No 3

References

Gozhik (2012), Late Early and early Middle Pleistocene limits of Scandinavian glaciations in Poland and Ukraine, Quaternary International, 271. ; Zagwijn (1996), An analysis of Eemian climate in Western and Central Europe, Quaternary Science Reviews, 15, 451, doi.org/10.1016/0277-3791(96)00011-X ; Skompski (1989), Molluscs and ostracod fauna of selected sites of the Mazovian Interglacial in Poland, Geological Quarterly, 33, 495. ; Marks (2005), Pleistocene river systems in the southern peribaltic area as indication of interglacial sea level changes in the Baltic Basin, Quaternary International, 130. ; Roman (2010), Eemian and Vistulian pollen sequence at Kubłowo ( Central Poland : implications for the limit of the Last Glacial Maximum, Geological Quarterly, 54, 55. ; Krupiński (1984), Evolution of Late Glacial and Holocene vegetation in the Polish Tatra Mts based on pollen analysis of sediments of the Przedni Staw Lake Bulletin of the Polish, Academy of Sciences Earth Sciences, 31, 37. ; Lindner (2004), Main climatic changes in the Quaternary of Poland Belarus and Ukraine, Geological Quarterly, 48, 97. ; Rychel (2014), Paleogeography of the environment in north - eastern Poland recorded in an Eemian sedimentary basin based on the example of the Jałówka site, Quaternary International, 328. ; Dzierżek (2007), Timing and style of deglaciation of northeastern Poland from cosmogenic Cl dating of glacial and glaciofluvial deposits, Geological Quarterly, 51, 36. ; Lindner (2006), Correlation of Pleistocene deposits in the area between the Baltic and Black Sea Central Europe, Geological Quarterly, 50, 195. ; Roman (2010), Rekonstrukcja lobu płockiego w czasie ostatniego zlodowacenia, Acta Geographica Lodziensia, 96, 1. ; Marks (2007), Development of meltwater outflow during Last Glacial Maximum in the Middle Neman valley region central Europe, Quaternary International, 269. ; Kupryjanowicz (2016), Instability of the environment at the end of the Eemian Interglacial as illustrated by isopollen maps of Poland, Geological Quarterly, 60, 225. ; Dzierżek (2009), Paleogeografia wybranych obszarów Polski w czasie ostatniego zlodowacenia, Acta Geographica Lodziensia, 95, 1. ; Makos (2011), Last Glacial Maximum climatic conditions in the Polish part of theHigh Tatra - Mountains ( Western Carpathians ), Geological Quarterly, 55, 253. ; Granoszewski (2003), Late Pleistocene vegetation history and climatic changes at Horoszki Poland : a palaeobotanical study, Acta Palaeobotanica, 4, 3. ; Dylik (1953), O peryglacjalnym charakterze rzeźby środkowej Polski Lodziensis, Acta Geographica Universitatis, 4, 1. ; Bujak (2016), A new stratigraphic position of some Early Pleistocene deposits in central Poland, Geological Quarterly, 60, 238, doi.org/10.7306/gq.1269 ; Bałuk (1991), Sediments of the Mazovian Interglacial from Zwierzyniec in Kurpie region Geologiczny, Przegląd, 39, 271. ; Woronko (2013), Heavy and light minerals as a tool for reconstructing depositional environments : an example from the Jałówka site ( northern Podlasie region NE Poland, Geologos, 19, 47, doi.org/10.2478/logos-2013-0004 ; Marks (2003), The Holsteinian Interglacial river network of mid - eastern Poland and western Belarus, Boreas, 32, 337, doi.org/10.1080/03009480310001975 ; Lindner (2013), Climatostratigraphy of interglacials in Poland : Middle and Upper Pleistocene lower boundaries from a Polish perspective, Quaternary International, 292. ; Lindner (1994), Jednostki stadialne i interstadialne ostatniego zlodowacenia Würm w Tatrach Polskich i na Podhalu Geographica Universiti Nicolae Copernici, Acta, 27, 59. ; Krupiński (1995), Stratygrafia pyłkowa i sukcesja roślinności interglacjału mazowieckiego, Acta Geographica Lodziensia, 70, 8. ; Rinterknecht (2005), Cosmogenic Be ages on the Pomeranian Moraine Poland, Boreas, 10, 186, doi.org/10.1080/03009480510012926 ; Palacios (2015), Maximum extent of Late Pleistocene glaciers and last deglaciation of La Cerdanya mountains Southeastern Pyrenees, Geomorphology, 231. ; Szymanek (2013), Palaeoecology of the Holsteinian lake in vicinity of Wilczyn ( Eastern Poland ) based on molluscan studies, Geological Quarterly, 57, 637, doi.org/10.7306/gq.1120 ; Nitychoruk (2000), Climate reconstruction from stable - isotope composition of the Mazovian Interglacial Holsteinian lake sediments in eastern Poland, Acta Geologica Polonica, 50, 247. ; Marks (2002), Last Glacial Maximum in Poland, Quaternary Science Reviews, 21, 103, doi.org/10.1016/S0277-3791(01)00086-5 ; Kuhlemann (2008), Regional synthesis of Mediterranean circulation during the Last Glacial Maximum, Science, 321. ; Small (2012), In - situ cosmogenic exposure ages from the Isle of Skye North West Scotland - Implications for the timing of deglaciation and readvance from - ka, Journal of Quaternary Science, 15, 150, doi.org/10.1002/jqs.1522 ; Dzierżek (2006), Record and paleogeographic implications of Pleistocene periglacial processes in the Drohiczyn Plateau Podlasie Lowland, Geological Quarterly, 50, 219. ; Marks (2012), Timing of the Late Vistulian Weichselian glacial phases in Poland, Quaternary Science Reviews, 44, 81, doi.org/10.1016/j.quascirev.2010.08.008 ; Popescu (2010), Pliocene and Lower Pleistocene vegetation and climate changes at the European scale : Long pollen records and climatostratigraphy, Quaternary International, 219. ; Ochs (2008), Ivy Chronology of the last glacial cycle in the European Alps, Journal of Quaternary Science, 23, 559, doi.org/10.1002/jqs.1202 ; Lindner (1995), Outline of palaeomorphology of the Polish territory during the Scandinavian glaciation Geologiczny, Przegląd, 43, 591. ; Sarikaya (2009), Glaciations and paleoclimate of Mount Erciyes central Turkey since the Last Glacial Maximum inferred from Cl cosmogenic dating and glacier modeling, Quaternary Science Reviews, 36, 2326, doi.org/10.1016/j.quascirev.2009.04.015 ; Kowalczyk (2014), Application of electrical resistivity tomography in assessing complex soil conditions, Geological Quarterly, 59, 367. ; Alexandrowicz (2010), Molluscs of the Eemian Interglacial in Poland, Annales Societatis Geologorum Poloniae, 80, 69. ; Mamakowa (1989), Late Middle Polish Glaciation Eemian and Early Vistulian vegetation at Imbramowice near Wrocław and the pollen stratigraphy of this part of the Pleistocene in Poland, Acta Palaeobotanica, 29, 11. ; Jastrzębska (1985), Interglacjał eemski i wczesny vistulian w Zgierzu - Rudunkach na Wyżynie Łódzkiej, Acta Geographica Lodziensia, 53, 1. ; Lindner (1982), River valleys of the Mazovian Interglacial in eastern Central Europe, Acta Geologica Polonica, 32, 179. ; Lindner (1982), Middle - Polish Glaciation ( Odranian Wartanian ) in southern Central Poland, Acta Geologica Polonica, 32, 191. ; Krupiński (1993), Geological position and pollen analysis of Eemian Interglacial sediments of Warsaw - Wawrzyszew, Acta Palaeobotanica, 33, 5. ; Punkari (1997), Glacial and glaciofluvial deposits in the interlobate areas of the Scandinavian Ice Sheet, Quaternary Science Reviews, 16, 741, doi.org/10.1016/S0277-3791(97)00020-6 ; Szymanek (2016), Stable and isotope records of Viviparus diluvianus Kunth shells from Holsteinian ( MIS lakes of eastern Poland as palaeoenvironmental and palaeoclimatic proxies, Boreas, 18, 1865. ; Lindner (1999), New approach to stratigraphy of palaeolake and glacial sediments of the younger Middle Pleistocene in mid - eastern Poland, Geological Quarterly, 43, 1. ; Lindner (2001), The age of the oldest Scandinavian glaciations in mid - eastern Poland and southwestern Belarus, Geological Quarterly, 45, 373. ; Lindner (2013), Origin and age of Pleistocene mixed gravels in the northern foreland of the Carpathians, Annales Societatis Geologorum Poloniae, 83, 29. ; Head (2005), Last Interglacial Eemian hydrographic conditions in the southeastern Baltic Sea NE Europe based on dinoflagellate cysts, Quaternary International, 130. ; Makos (2014), Timing of glacier advances and climate in the High Tatra Mountains ( Western Carpathians ) during the Last Glacial Maximum, Quaternary Research, 82, 1, doi.org/10.1016/j.yqres.2014.04.001 ; Makos (null), ASTER Team Glacial chronology and palaeoclimate in the Bystra catchment Western Tatra Mountains Poland during the Late Pleistocene, Quaternary Science Reviews, 2016. ; Makos (2013), The Younger Dryas climatic conditions in the Za Mnichem - Valley ( Polish High TatraMountains ) based on exposure - age dating and glacier climate modeling, Boreas, 42, 745, doi.org/10.1111/j.1502-3885.2012.00298.x ; Marks (2016), a Climate environment and stratigraphy of the Pleistocene last glacial stage in Poland org, Quaternary International, doi.org/10.1016/j.quaint.2015.07.047 ; Janczyk (1974), The Eemian Interglacial sediments at Błonie near Warsaw Bulletin of Polish Academy of Scieces, Earth Sciences, 22, 147. ; Marks (2004), a Middle and Late Pleistocene fluvial systems in central Poland Proceedings of the, Geologists Association, 115, 1. ; Dzierżek (2013), Interplenivistulian ( MIS environmental changes recorded in sub - till lake deposits at Wildno Dobrzyń Lakeland ( Polish Lowland ), Quaternary International, 294. ; Głazek (1976), and Interglacial Mindel I Mindel II in fossil bearing karst of Kozi Grzbiet in Holy Cross Mts, Acta Geologica Polonica, 26, 376. ; Szymanek (2012), Malacofauna of the Holsteinian lake deposits at Hrud II ( eastern Poland ) and its ecological significance, Geological Quarterly, 56, 117. ; Marks (2014), Sea transgressions during Eemian in northern Poland a high resolution proxy record from the type section at Cierpięta, Quaternary International, 328. ; Rinterknecht (2006), a The last deglaciation of the southeastern sector of Scandinavian Ice Sheet, Science, 311. ; Borówko (1957), Interglacjały Suwalszczyzny i terenów sąsiednich, Acta Geologica Polonica, 7, 361. ; Kalińska (2016), Upper Pleistocene palaeoenvironmental changes at the Zwierzyniec site central Poland, Geological Quarterly, 60, 000, doi.org/10.7306/gq.1280 ; Kuhlemann (2013), Glaciation in the Rila Mountains Bulgaria during the Last Glacial Maximum, Quaternary International, 293. ; Hemming (2004), Heinrich events : massive Late Pleistocene detritus layers of the North Atlantic and their global climate imprint, Reviews of Geophysics, 42, 1, doi.org/10.1029/2003RG000128 ; Uścinowicz (1999), Southern Baltic area during the last glaciation, Geological Quarterly, 43, 137. ; Lindner (1991), Pleistocene lake sediments of the site Hrud I near Biała Podlaska, Geological Quarterly, 35, 337. ; Lindner (1991), Stratigraphy of main Pleistocene loess horizons and paleosols in mid - eastern Europe, Acta Geologica Polonica, 41, 85. ; Lindner (2003), Outline of Quaternary glaciations in the Tatra Mountains : their development age and limits, Geological Quarterly, 47, 269. ; Lindner (2015), Early and Middle Pleistocene fluvial series in nothern foreland of the Carpathians ( Poland and Ukraine ) and their relation to Dnistr River terraces, Quaternary International, 357. ; Clark (2009), The Last Glacial Maximum, Science, 325. ; Knudsen (2012), Environmental reconstructions of Eemian Stage interglacial marine records in the Lower Vistula area southern Baltic Sea, Boreas, 41, 209, doi.org/10.1111/j.1502-3885.2011.00232.x ; Kalińska (2016), The fan - like forms in the southern margin of the Mazovian Lowland area ( Central Poland : a new high - resolution textural - timing study, International Journal of Earth Sciences, 105, 885, doi.org/10.1007/s00531-015-1218-7 ; Rinterknecht (2006), Cosmogenic dating of the Pomeranian Moraine : adding a regional perspective : Reply to comments, and Boreas, 35, 605, doi.org/10.1080/03009480600781982 ; Rasmussen (2014), A stratigraphic framework for abrupt climatic changes during the Last Glacial period based on three synchronized Greenland ice - core records : refining and extending the INTIMATE event stratigraphy, Quaternary Science Reviews, 106, 14, doi.org/10.1016/j.quascirev.2014.09.007 ; Makos (2013), a Deglaciation chronology and paleoclimate of the Pięciu Stawów Polskich / Roztoki Valley High Tatra Mountains Western Carpathians since the Last Glacial Maximum inferred from Cl exposure dating and glacier - climate modeling, Quaternary International, 36, 63, doi.org/10.1016/j.quaint.2012.01.016
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