Re-Evaluation of the Ionian Basin Evolution during the Late Cretaceous to Eocene (Aetoloakarnania Area, Western Greece)
Abstract
:1. Introduction
2. Geological Setting
3. Material and Methods
4. Biostratigraphy
5. Facies Analysis and Depositional Environments
5.1. Discription of the Studied Lithostratigraphic Units and Associated Microfacies Types
5.2. Interpretation of the Depositional Environments
6. Discussion
- Early Eocene (Ypresian-Lutetian), the integration of Microfacies and the biostratigraphic analyses suggest that the “platy limestones” Formation, which are defined by wackestone/packstone limestones with Globigerinidae and nodular cherts (SMF 3), correspond to a toe-of-slope depositional environment (FZ: 3), and without any doubt they characterize a deep-sea environment.
- During the upper part of the lower Eocene (Lutetian) in the study area, toe-of-slope (FZ: 3) is not the only depositional setting that has been recognized. The presence of SMF 4 and SMF 5 microfacies types has been also noticed, which are attributable to shallower environments such as a slope (FZ: 4) and are in accordance with field observations (Figure 24), where thick bedded microbreccia limestones were deposited. Specifically, microfacies SMF 5 is composed of packstones/rudstones with planktic foraminifera in combination with transported components deriving from a relatively shallow environment such as a shallow carbonate platform. These components consist of scattered benthic foraminifera such as Nummulites sp., Discocyclina sp., Quiqueloculina sp., Alveolina sp., as well as algae and bivalve debris, indicating a relatively high energy environment. Additionally, SMF 4 is represented by polymict clast supported microbreccia consisting of carbonate litho- and bioclasts with scattered planktic and benthic foraminifera, indicating a slope depositional environment (FZ: 4). This microbreccia derived from the erosion of the Cretaceous carbonates from the Gavrovo platform to the east.
- 3.
- Upper Eocene (Lutetian-Bartonian), when the transitional deposits were deposited, just before the appearance of the terrigenous clastic submarine fans. Within the carbonates pelagic mudstones/wackestones have been repeatedly observed, containing planktic foraminifera and radiolaria that correspond to SMF 3. Despite the fact that the presence of SMF 3 corresponds to a toe-of-slope environment, the occurrence of a mud-dominated SMF 3 during this period (Lutetian-Bartonian), associated with scarce, thin limestone beds that contain planktic foraminifera indicates a deeper environment, the deeper part of the toe-of-slope (FZ: 3).
7. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
- Rigakis, N.; Karakitsios, V. The source rock horizons of the Ionian basin (NW Greece). Mar. Petrol. Geol. 1998, 15, 593–617. [Google Scholar] [CrossRef]
- Karakitsios, V. Western Greece and Ionian Sea petroleum systems. AAPG Am. Assoc. Pet. Geol. Bull. 2013, 97, 1567–1595. [Google Scholar] [CrossRef] [Green Version]
- Zelilidis, A.; Maravelis, A.G.; Tserolas, P.; Konstantopoulos, P.A. An overview of the Petroleum systems in the Ionian zone, onshore NW Greece and Albania. J. Petrol. Geol. 2015, 38, 331–347. [Google Scholar] [CrossRef]
- Botziolis, C.; Maravelis, A.; Pantopoulos, G.; Kostopoulou, S.; Catuneanu, O.; Zelilidis, A. Stratigraphic and paleogeographic development of a deep-marine foredeep: Central Pindos foreland basin, western Greece. Mar. Petrol. Geol. 2021, 128, 105012. [Google Scholar] [CrossRef]
- Philipson, A. Uber die Alterfolge der Sediment formationen in Griechenland. Zeit. Deutsch. Geol. Ges. 1890, 42, 150–159. [Google Scholar]
- Renz, C. Die Vorneogene Stratigraphie der Normal-Sedimentaren Formationen Griechenlan; Institute for Geology and Subsurface Research: Athens, Greece, 1955; p. 637. [Google Scholar]
- Aubouin, J. Contribution a l’étude géologique de la Grece septentrionale: Les confins de l’Epire et de la Thesallie. Ann. Géol. Pays Hell. 1959, 10, 870–885. [Google Scholar]
- IGRS-IFP. Etude Géologique de l’Epire (Grece Nordoccidentale); Editions Technip: Paris, France, 1966; 306p. [Google Scholar]
- Bornovas, J. Observations nouvelles sur la geologie des zones preapulienne et ionienne (Grece occidentale). Bull. Soc. Geol. Fr. 1961, 7, 410–414. [Google Scholar] [CrossRef]
- Bernoulli, D.; Renz, O. Jurassic Carbonate Facies and New Ammonite Faunas from Western Greece. Eel. Geol. Hei. 1970, 63, 573–607. [Google Scholar]
- British Petroleum Co., Ltd. (BP). The Geological Results of Petroleum Exploration in Western Greece; Special Report 10; Institute for Geology and Subsurface Research (now Institute of Geology and Mineral Exploration): Athens, Greece, 1971; pp. 1–73. [Google Scholar]
- Karakitsios, V.; Tsaila-Monopolis, S. Données nouvelles sur les niveaux supérieurs (Lias inférieur—moyen) des calcaires de Pantokrator (Zone Ionienne moyen, Epire, Grece contenentale) description des calcaires de Louros (New data from the upper part (early middle Lias) of the Pantokrator limestone (middle Ionian zone, Epirus, continental Greece) description of Louros limestone). Revue de Micropaléontologie 1988, 31, 49–55. [Google Scholar]
- Karakitsios, V.; Danelian, T.; De Wever, P. Datation par les radiolaires des Calcaires ä Filaments, Schists a Posidonies supérieurs et Calcaires de Vigla “Zone Ionienne, Epire, Grèce”, du Callovient au Tithonique terminal. C. R. Acad. Sci. 1988, 306, 367–372. [Google Scholar]
- Skourtsis-Coroneou, V.; Solacious, N.; Constantinidis, I. Cretaceous stratigraphy of the Ionain Zone, Hellenides, western Greece. Cretac. Res. 1995, 16, 539–558. [Google Scholar] [CrossRef]
- Zelilidis, A.; Piper, D.J.; Vakalas, I.; Avramidis, P.; Getsos, K. Oil and Gas Plays in Albania: Do Equivalent Plays Exist in Greece? J. Pet. Geol. 2003, 26, 29–48. [Google Scholar] [CrossRef]
- Bourli, N.; Pantopoulos, G.; Maravelis, A.G.; Zoumpoulis, E.; Iliopoulos, G.; Pomoni-Papaioannou, F.; Kostopoulou, S.; Zelilidis, A. Late Cretaceous to Early Eocene geological history of the eastern Ionian Basin, southwestern Greece: An integrated sedimentological and bed thickness statistics analysis. Cretac. Res. 2019, 98, 47–71. [Google Scholar] [CrossRef]
- Bourli, N.; Kokkaliari, M.; Iliopoulos, I.; Pe-Piper, G.; Piper, D.J.W.; Maravelis, A.G.; Zelilidis, A. Mineralogy of siliceous concretions, Cretaceous of Ionian zone, western Greece: Implication for diagenesis and porosity. Mar. Pet. Geol. 2019, 105, 45–63. [Google Scholar] [CrossRef]
- Kontakiotis, G.; Moforis, L.; Karakitsios, V.; Antonarakou, A. Sedimentary Facies Analysis, Reservoir Characteristics and Paleogeography Significance of the Early Jurassic to Eocene Carbonates in Epirus (Ionian Zone, Western Greece). J. Mar. Sci. Eng. 2020, 8, 706. [Google Scholar] [CrossRef]
- Bourli, N.; Iliopoulos, G.; Papadopoulou, P.; Zelilidis, A. Microfacies and Depositional Conditions of Jurassic to Eocene Carbonates: Implication on Ionian Basin Evolution. Geosciences 2021, 11, 288. [Google Scholar] [CrossRef]
- Karakitsios, V. The influence of pre-existing structure and halokinesis on organic matter preservation and thrust system evolution in the Ionian basin, northwestern Greece. AAPG Bull. 1995, 79, 960–980. [Google Scholar] [CrossRef]
- Kouris, C. Geological Map of Greece, Mesholonghion Sheet (1:50.000); I.G.M.E.: Athens, Greece, 1990. [Google Scholar]
- Bourli, N.; Kokkaliari, M.; Dimopoulos, N.; Iliopoulos, I.; Zoumpouli, E.; Iliopoulos, G.; Zelilidis, A. Comparison between Siliceous Concretions from the Ionian Basin and the Apulian Platform Margins (Pre-Apulian Zone), Western Greece: Implication of Differential Diagenesis on Nodules Evolution. Minerals 2021, 11, 890. [Google Scholar] [CrossRef]
- Flügel, E. Microfacies of Carbonate Rocks, 2nd ed.; Springer: Berlin/Heidelberg, Germany, 2010; p. 984. [Google Scholar] [CrossRef]
- Lokier, S.W.; Al Junaibi, M. The petrographic description of carbonate facies: Are we all speaking the same language? Sedimentology 2016, 63, 1843–1885. [Google Scholar] [CrossRef] [Green Version]
- Sotiropoulos, S.; Kamberis, E.; Triantaphyllou, M.V.; Doutsos, T. Thrust sequences in the central part of the External Hellenides. Geol. Mag. 2003, 140, 661–668. [Google Scholar] [CrossRef]
- Karakitsios, V. Ouverture et inversion tectonique du basin Ionien (Epire, Grèce). Annales Géologiques des Pays Helléniques 1992, 35, 185–318. [Google Scholar]
- Maravelis, A.; Makrodimitras, G.; Zelilidis, A. Hydrocarbon prospectivity in the Apulian platform and Ionian zone, in relation to strike-slip fault zones, foreland and back-thrust basins of Ionian thrust, in Greece. Oil Gas Eur. Mag. 2012, 38, 64–89. [Google Scholar]
- Doutsos, T.; Koukouvelas, I.; Xypolias, P. A new orogenic model for the External Hellenides. In Tectonic Evolution of the Eastern Mediterranean Regions; Robertson, A.H.F., Mountrakis, D., Brun, J.-P., Eds.; Geological Society of London Special Publications, Geological Society of London: London, UK, 2006; pp. 507–520. [Google Scholar] [CrossRef]
- Kokinou, E.; Kamberis, E.; Vafidis, A.; Monopolis, D.; Ananiadis, G.; Zelilidis, A. Deep seismic reflection data from offshore western Greece: A new crustal model for the Ionian Sea. J. Pet. Geol. 2005, 28, 81–98. [Google Scholar] [CrossRef]
- Colacicchi, R.; Baldanza, A. Carbonate turbidites in a Mesozoic pelagic basin: Scaglia formation, Apennines comparison with siliciclastic depositional models. Sediment. Geol. 1986, 48, 81–105. [Google Scholar] [CrossRef]
- Cazzini, F.; Dal Zotto, O.; Fantoni, R.; Ghielmi, M.; Ronchi, P.; Scotti, P. Oil and gas in the Adriatic foreland, Italy. J. Pet. Geol. 2015, 38, 255–279. [Google Scholar] [CrossRef]
- Bosellini, A.; Morsilli, M.; Neri, C. Long-term event stratigraphy of the Apulia Platform margin (Upper Jurassic to Eocene, Gargano, southern Italy). J. Sediment. Res. 1999, 69, 1241–1252. [Google Scholar] [CrossRef]
- Pomoni-Papaioannou, F. The sedimentology and depositional environment of the Triassic dolomite-gyprum facies of western Greece. In Proceedings of the 6th European Meeting of the International Association of Sedimentologists, Lerida, Spain, 15–17 April 1985; pp. 367–368. [Google Scholar]
- Zelilidis, A.; Papatheodorou, G.; Maravelis, A.; Christodoulou, D.; Tserolas, P.; Fakiris, E.; Dimas, X.; Georgiou, N.; Ferentinos, G. Interplay of thrust, back-thrust, strike-slip and salt tectonics in a Fold and Thrust Belt system: An example from Zakynthos Island, Greece. Int. J. Earth Sci. 2016, 105, 2111–2132. [Google Scholar] [CrossRef]
- Konstantopoulos, P.; Maravelis, A.; Zelilidis, A. The implication of transfer faults in foreland basin evolution: Application on Pindos Foreland Basin, West Peloponnesus, Greece. Terra Nova 2013, 25, 323–336. [Google Scholar] [CrossRef]
- Fleury, J.J. Les zones de Gavrovo-Tripolitza et du Pinde-Olonus (Grece occidentale et Peloponnese du Nord): Evolution d’une plateforme et d’une bassin dans leur cadre alpin. Villeneuve d’Ascq. Société Géologique du Nord 1980, 4, 651. [Google Scholar]
- Leigh, S.; Hartley, A.J. Mega-debris flow deposits from the OligoMiocene Pindos foreland basin, western mainland Greece: Implication for transport mechanisms in ancient deep marine basins. Sedimentology 1992, 39, e1003–e1012. [Google Scholar] [CrossRef]
- Avramidis, P.; Zelilidis, A.; Vakalas, I.; Kontopoulos, N. Interactions between tectonic activity and eustatic sea-level changes in the Pindos and Mesohellenic basins, NW Greece: Basin evolution and hydrocarbon potential. J. Petrol. Geol. 2002, 25, 53–82. [Google Scholar] [CrossRef]
- Avramidis, P.; Zelilidis, A. The nature of deep-marine sedimentation and palaeocurrent trends as an evidence of Pindos foreland basin fill conditions. Episodes 2001, 24, 252–256. [Google Scholar] [CrossRef] [Green Version]
- Dunham, R.J. Classification of carbonate rocks according to depositional texture. In Classification of Carbonate Rocks; Ham, W.E., Ed.; American Association of Petroleum Geologists Memoir: Tulsa, OK, USA, 1962; pp. 108–121. [Google Scholar]
- Embry, A.F.; Klovan, J.E. A late Devonian reef tract on northeastern Banks Island. NWT Bull. Can. Pet. Geol. 1971, 19, 730–781. [Google Scholar] [CrossRef]
- Wilson, J.K. Carbonate Facies in Geological History; Springer: Berlin/Heidelberg, Germany; New York, NY, USA, 1975; p. 471. [Google Scholar]
- Boudagher-Fadel, M.K. Evolution and Geological Significance of Larger Benthic Foraminifera Developments in Palaeontology & Stratigraphy; Elsevier: Amsterdam, The Netherlands, 2008; 571p. [Google Scholar]
- Boudagher-Fadel, M.K. Biostratigraphic and Geological Significance of Planktonic Foraminifera, 2nd ed.; UCL Press: London, UK, 2015; 320p. [Google Scholar]
- Young, J.R.; Wade, B.S.; Huber, B.T. Pforams@mikrotax Website. 21 April 2017. Available online: http://www.mikrotax.org/pforams (accessed on 5 December 2021).
- Grotsch, J. Cycle stacking and long-term sea-level history in the Lower Cretaceous (Gavrovo Platform, NW Greece). J. Sediment. Res. 1996, 66, 723–736. [Google Scholar] [CrossRef]
- Miller, K.G.; Mountain, G.S.; Wright, J.D.; Browning, J.V. A 180-million-year record of sea level and ice volume variations from continental margin and deep-sea isotopic records. Oceanography 2011, 24, 40–53. [Google Scholar] [CrossRef]
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Zoumpouli, E.; Maravelis, A.G.; Iliopoulos, G.; Botziolis, C.; Zygouri, V.; Zelilidis, A. Re-Evaluation of the Ionian Basin Evolution during the Late Cretaceous to Eocene (Aetoloakarnania Area, Western Greece). Geosciences 2022, 12, 106. https://doi.org/10.3390/geosciences12030106
Zoumpouli E, Maravelis AG, Iliopoulos G, Botziolis C, Zygouri V, Zelilidis A. Re-Evaluation of the Ionian Basin Evolution during the Late Cretaceous to Eocene (Aetoloakarnania Area, Western Greece). Geosciences. 2022; 12(3):106. https://doi.org/10.3390/geosciences12030106
Chicago/Turabian StyleZoumpouli, Elena, Angelos G. Maravelis, George Iliopoulos, Chrysanthos Botziolis, Vasiliki Zygouri, and Avraam Zelilidis. 2022. "Re-Evaluation of the Ionian Basin Evolution during the Late Cretaceous to Eocene (Aetoloakarnania Area, Western Greece)" Geosciences 12, no. 3: 106. https://doi.org/10.3390/geosciences12030106
APA StyleZoumpouli, E., Maravelis, A. G., Iliopoulos, G., Botziolis, C., Zygouri, V., & Zelilidis, A. (2022). Re-Evaluation of the Ionian Basin Evolution during the Late Cretaceous to Eocene (Aetoloakarnania Area, Western Greece). Geosciences, 12(3), 106. https://doi.org/10.3390/geosciences12030106