Insights into the structural geology and sedimentary succession of the Baltic Basin, Western Lithuania
Tài liệu tham khảo
Ani, 2020, Rock head elevation model of northern Estonia, Est. J. Earth Sci., 69, 109, 10.3176/earth.2020.07
Bogdanova, 2015, Trans-Baltic Palaeoproterozoic correlations towards the reconstruction of supercontinent Columbia/Nuna, Precambrian Res., 259, 5, 10.1016/j.precamres.2014.11.023
Brandes, 2014, Fault-related folding: a review of kinematic models and their application, Earth Sci. Rev., 138, 352, 10.1016/j.earscirev.2014.06.008
Brangulis, 2002, 50
Brangulis, 1993, Geology and hydrocarbon prospects of the Paleozoic in the Baltic region, Geological Society, London, Petroleum Geology Conference series, 4, 651, 10.1144/0040651
Brown, 2011
Claesson, 2001, Isotopic evidence for palaeoproterozoic accretion in the basement of the east European Craton, Tectonophysics, 339, 1, 10.1016/S0040-1951(01)00031-2
Cyz, 2018, Brittleness prediction for the Lower Paleozoic shales in northern Poland, Interpretation, 6, 1, 10.1190/INT-2017-0200.1
Čyžienė, 2003
Čyžienė, 2006
2007
Domźalski, 2004, The prospects for petroleum exploration in the eastern sector of Southern Baltic as revealed by sea bottom geochemical survey correlated with seismic data, Przeglad Geol., 52, 792
Dörr, 2002, U-Pb and Ar-Ar geochronology of anorogenic granite magmatism of the Mazury complex, NE Poland, Precambrian Res., 119, 101, 10.1016/S0301-9268(02)00119-5
1999, Seismic velocity structure across the Fennoscandia-Sarmatia suture of the East European Craton beneath the EUROBRIDGE profile through Lithuania and Belarus, Tectonophysics, 314, 193, 10.1016/S0040-1951(99)00244-9
2020
Flodén, 1980, Seismic stratigraphy and bedrock geology of the central Baltic, Acta Universitatis Stockholmiensis Stockholm Contributions in Geology, 35, 240pp
Flodén, 1997, vol. 86, 43
Grendaitė, 2022, A large array of inselbergs on a continuation of the sub-Cambrian peneplain in the Baltic Basin: evidence from seismic data, Western Lithuania, Geol. Q., 66, 2
Hunter, 2007, Matplotlib: a 2D graphics environment, Comput. Sci. Eng., 9, 90, 10.1109/MCSE.2007.55
Jaanusson, 1973, Aspects of carbonate sedimentation in the ordovician of baltoscandia, Lethaia, 6, 11, 10.1111/j.1502-3931.1973.tb00871.x
Kadūnas, 2001, 191
Kaminskas, 2015, New evidence of an early Pridoli barrier reef in the southern part of the Baltic Silurian basin based on three-dimensional seismic survey, Lithuania, Est. J. Earth Sci., 64, 47, 10.3176/earth.2015.09
Kanev, 2001, Latvia's first onshore round–its potential and perspectives, Oil Gas Eur. Mag., 3, 19
Karnkowski, 2007, Permian Basin as a main exploration target in Poland, Przegąd Geologiczny, 55, 1003
Karnkowski, 2010, Petroleum geology of the Polish part of the Baltic region – an overview, Geol. Q., 54, 143
Konon, 2021, Using seismic and well data to determine processes of folding in the Pomeranian segment of the Caledonian Foredeep Basin, Poland, Mar. Petrol. Geol., 124, 10.1016/j.marpetgeo.2020.104804
Kosakowski, 2016, Petroleum source rock evaluation of the alum and dictyonema shales (upper cambrian–lower ordovician) in the Baltic Basin and podlasie depression (eastern Poland), Int. J. Earth Sci.
Krzywiec, 2017, Permo-triassic evaporites of the polish basin and their bearing on the tectonic evolution and hydrocarbon system, an overview
Kuznetsov, 2018, Reef construction in the second half of the permian and biotic crisis at the permian–triassic boundary, Stratigr. Geol. Correl., 26, 755, 10.1134/S086959381807002X
Lapinskas, 1985, New data on the stratigraphy and correlation of the south-east baltic wenlockian and ludlovian (silurian), Geologija, 6, 29
Laskov, 1975, Obobsenie geologo-geofiziceskih materialov po zapadnoj litve i prilegausej akvatorii s cel'u dal’nejsego napravlenia geologorazvedocnyh rabot v baltijskom more, 197
Laškovas, 1996
Lidmar-Bergström, 1995, Relief and saprolites through time on the baltic shield, Geomorphology, 12, 45, 10.1016/0169-555X(94)00076-4
Lidmar-Bergström, 2013, Stratigraphic Landscape Analysis and geomorphological paradigms: Scandinavia as an example of Phanerozoic uplift and subsidence, Global Planet. Change, 100, 153, 10.1016/j.gloplacha.2012.10.015
Lidmar-Bergström, 2017, The South Swedish Dome: a key structure for identification of peneplains and conclusions on Phanerozoic tectonics of an ancient shield, GFF, 139, 244, 10.1080/11035897.2017.1364293
Lundmark, 2016, The provenance and setting of the Mesoproterozoic Dala Sandstone, western Sweden, and paleogeographic implications for southwestern Fennoscandia, Precambrian Res., 275, 197, 10.1016/j.precamres.2016.01.003
Matyja, 2006, Stratigraphy and facies development of devonian and carboniferous deposits in the pomeranian basin and in the western part of the Baltic Basin and palaeogeography of the northern TESZ during late palaeozoic times, Pr. Panstwowego Inst. Geol. (1988), 186, 79
Mikołajczak, 2019, Depth-to-basement for the east European Craton and TeisseyreTornquist zone in Poland based on potential field data, Int. J. Earth Sci., 108, 547, 10.1007/s00531-018-1668-9
Modliński, 1999, Palaeotectonic evolution of the Baltic Syneclise during the Early Palaeozoic as documented by palaeo thickness maps, Geol. Q., 43, 285
Molenaar, 2007, Quartz cementation mechanisms and porosity variation in Baltic Cambrian sandstones, Sediment. Geol., 195, 135, 10.1016/j.sedgeo.2006.07.009
Motuza, 2006, The Žemaičių Naumiestis granitoids: new evidences for Mesoproterozoic magmatism in Western Lithuania, GFF, 128, 243, 10.1080/11035890601283243
Motuza, 2008, Extensive charnockitic-granitic magmatism in the crystalline crust of West Lithuania, Geologija, 50, 1, 10.2478/v10056-008-0001-x
Nielsen, 2019, The Miaolingian, a new name for the ‘Middle’ Cambrian (Cambrian Series 3): identification of lower and upper boundaries in Baltoscandia, GFF, 141, 162, 10.1080/11035897.2019.1621374
Nielsen, 2011, The Lower Cambrian of Scandinavia: depositional environment, sequence stratigraphy and palaeogeography, Earth Sci. Rev., 107, 207, 10.1016/j.earscirev.2010.12.004
Nielsen, 2015, The regressive early-mid cambrian ‘hawke bay event’ in baltoscandia: epeirogenic uplift in concert with eustasy, Earth Sci. Rev., 151, 288, 10.1016/j.earscirev.2015.09.012
Papiernik, 2019, Unconventional hydrocarbon prospects in Ordovician and Silurian mudrocks of the East European Craton (Poland): insight from three-dimensional modelling of total organic carbon and thermal maturity, Ann. Soc. Geol. Pol., 89, 511
Paškevičius, 1997
Peryt, 2020, Journal of Palaeography, 9, 18, 10.1186/s42501-020-00066-w
Peryt, 2012, Upper Permian reef complex in the basinal facies of the Zechstein Limestone (Ca1), western Poland, Geol. J., 47, 537, 10.1002/gj.2440
Poprawa, 1999, Late Vendian–Early Palæozoic tectonic evolution of the Baltic Basin: regional tectonic implications from subsidence analysis, Tectonophysics, 314, 219, 10.1016/S0040-1951(99)00245-0
Poprawa, 2019, Geological setting and Ediacaran–Palaeozoic evolution of the western slope of the East European Craton and adjacent regions, Ann. Soc. Geol. Pol., 89, 347
Poprawa, 2020, Geochronology of the volyn volcanic complex at the western slope of the east European Craton – relevance to the neoproterozoic rifting and the break-up of rodinia/pannotia, Precambrian Res., 346, 10.1016/j.precamres.2020.105817
Radzevičius, S., Stankevič, R., Budginas, R., Cichon-Pupienis, A., Venckutė-Aleksienė, A., Meidla, T., Ainsaar, L., Spiridonov, A, 2022. Integrated stratigraphy of the Ludlow (Silurian) of the Baubliai-2 core (western Lithuania) and the record of δ18O and δ13C climatically driven co-variability. Newsl. Stratigr.. https://doi.org/10.1127/nos/2022/0712.
Rafaelsen, 2008, From detached to attached carbonate buildup complexes – 3D seismic data from the upper Palaeozoic, Finnmark Platform, southwestern Barents Sea, Sediment. Geol., 206, 17, 10.1016/j.sedgeo.2008.03.001
Sivhed, 2004, Upper Ordovician carbonate mounds on Gotland, central Baltic Sea: distribution, composition and reservoir characteristics, J. Petrol. Geol., 27, 115, 10.1111/j.1747-5457.2004.tb00049.x
Sopher, 2013, Processing and interpretation of vintage 2D marine seismic data from the outer Hanö Bay area, Baltic Sea, J. Appl. Geophys., 95, 1, 10.1016/j.jappgeo.2013.04.011
Sopher, 2016, The structure and stratigraphy of the sedimentary succession in the Swedish sector of the Baltic Basin: new insights from vintage 2D marine seismic data, Tectonophysics, 676, 90, 10.1016/j.tecto.2016.03.012
Stirpeika, 1999
Šeštokas, 2001, 3D seismic exploration in Lithuania, Geol. Akiraciai, 44, 14
Šliaupa, 2011, Geological evolution and resources of the Baltic Sea area from the precambrian to the quaternary, 10.1007/978-3-642-17220-5_2
Tuuling, 2000, Late Ordovician carbonate buildups and erosional features northeast of Gotland, northern Baltic Sea, GFF, 122, 237, 10.1080/11035890001222237
Tuuling, 2007, The Ordovician-Silurian boundary beds between Saaremaa and Gotland, Baltic Sea, based on high resolution seismic data, Geol. Q., 51, 217
Tuuling, 2009, Seismic correlation of Palaeozoic rocks acrossthe northern Baltic Proper – Swedish-Estonian project since 1990, a review, Est. J. Earth Sci., 58, 273, 10.3176/earth.2009.4.06
Tuuling, 2019, The Leba Ridge-Riga-Pskov Fault Zone – a major East European Craton interior dislocation zone and its role in the early Palaeozoic development of the platform cover, Est. J. Earth Sci., 68, 161, 10.3176/earth.2019.12
Ūsaitytė, 2000, The geology of the southeastern Baltic Sea: a review, Earth Sci. Rev., 50, 137, 10.1016/S0012-8252(00)00002-7
Zdanavičiūtė, 2004, Hydrocarbon migration and entrapment in the baltic syneclise, Org. Geochem., 35, 517, 10.1016/j.orggeochem.2004.01.016
Zdanavičiūtė, 2007, The petroleum potential of the Silurian succession in Lithuania, J. Petrol. Geol., 30, 325, 10.1111/j.1747-5457.2007.00325.x
Zdanavičiūtė, 2012, The middle Cambrian succession in the central Baltic Basin: geochemistry of oils and sandstone reservoir characteristics, J. Petrol. Geol., 35, 237, 10.1111/j.1747-5457.2012.00528.x