1887
Volume 13 Number 3
  • E-ISSN: 1365-2117

Abstract

The Eridanos fluvio‐deltaic system, draining most of north‐western Europe, developed during the Late Cenozoic as a result of simultaneous uplift of the Fennoscandian shield and accelerated subsidence in the North Sea Basin. This seismo‐stratigraphic study aims to reconstruct the large‐scale depositional architecture of the deltaic portion of the basin fill and relate it to external controls. A total of 27 units have been recognized. They comprise over 62×103 km3 in the Southern North Sea Basin alone, and have an average delta surface area of 28×103 km2, which suggests that the size of the drainage area was about 1.1×106 km2. Water depth in the depocentre is seen to decrease systematically over time. This trend is interrupted by a deepening phase between 6.5 and 4.5 Ma that can be correlated with the simultaneous occurrence of increased uplift of the Fennoscandian shield, increased subsidence of the Southern North Sea Basin, and a long‐term eustatic highstand. All these observations point to a tectonic control on long‐term average rates of accommodation and supply. Controls on short‐term variations are inferred from variations in rates of sediment supply and bifurcation of the delta channel network. Both rates were initially low under warm, moist, relatively stable climate conditions. The straight wave‐dominated delta front gradually developed into a lobate fluvial‐dominated delta front. Two high‐amplitude sea‐level falls affected the Pliocene units, which are characterized by widespread delta‐front failures. Changes in relative sea level and climate became more frequent from the late Pliocene onward, as the system experienced the effects of glacial–interglacial transitions. Peaks in sedimentation and bifurcation rates were coeval with cold (glacial) conditions. The positive correlation between rates of supply and bifurcation on the one hand, and climate proxies (pollen and δ18O records) on the other hand is highly significant. The evidence presented in this study convincingly demonstrates the control of climate on time‐averaged sediment supply and channel‐network characteristics, despite the expected nonuniformity and time lags in system response. The presence of a clearly discernible climate signal in time‐averaged sediment supply illustrates the usefulness of integrated seismo‐stratigraphic studies for basin‐wide analysis of delta evolution on geological time scales.

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References

  1. Berggren, W.A., Hilgen, F.J., Langereis, C.G., Kent, D.V., Obradovich, J.D., Raffi, I., Raymo, M.E., Shackleton, N.J. (1995) Late Neogene chronology: new perspectives in high‐resolution stratigraphy. Geol. Soc. Am. Bull., 107, 293–312.
    [Google Scholar]
  2. Bertelsen, F. (1972) Azolla species from the Pleistocene of the Central North Sea area. Grana, 12, 131–145.
    [Google Scholar]
  3. Bijlsma, S. (1981) Fluvial sedimentation from the Fennoscandian area into the north‐west European basin during the late Cenozoic. Geol. Mijnb., 60, 337–345.
    [Google Scholar]
  4. Bishop‐Kay, C.J. (1993) The growth and gross morphology of Quaternary deltas in the southern North Sea . Unpublished PhD Thesis, University of Edinburgh.
  5. Bloom, A.L. (1991) Geomorphology: Systematic Analysis of Late Cenozoic Landforms, 2nd edn. Prentice Hall, Englewood Cliffs, NJ.
    [Google Scholar]
  6. Blum, M.D. & Törnqvist, T.E. (2000) Fluvial responses to climate and sea‐level change; a review and look forward. Sedimentology, 47 (Suppl. 1), 2–48.
    [Google Scholar]
  7. Breiner, M. (1999) A sequence stratigraphic study of the Dutch offshore sector blocks E,F, G, K,L and M of Neogene and younger sequences – interpretation, mapping and plotting. Unpublished MSc Thesis, University of Århus, Department of Marine Geology.
  8. Bull, W.B. (1991) Geomorphic Responses to Climatic Change. Oxford University Press, New York.
    [Google Scholar]
  9. Cameron, T.D.J. (1993) Late Cenozoic evolution of the Southern North Sea Basin. Terra Nova, 5, Abstract Suppl., No 1.
    [Google Scholar]
  10. Cameron, T.D.J., Bulat, J., Mesdag, C.S. (1993) A high resolution seismic profile through a Cenozoic delta complex in the Southern North Sea. Mar. Petrol. Geol., 10, 591–599.
    [Google Scholar]
  11. Cartwright, J.A. (1995) Seismic‐stratigraphical analysis of large‐scale ridge‐though sedimentary structures in the Late Miocene to early Pliocene of the central North Sea. In: Sedimentary Facies Analysis; a Tribute to the Research & Teaching of Harold, G. Reading (Ed. by G.A. Plint), Spec. Publ. Int. Ass. Sedimentol., 22, 285–303.
    [Google Scholar]
  12. Caston, V.N.D. (1977) Quaternary deposits of the Central North Sea, 1: a new isopach map of the Quaternary of the North Sea. Report Inst. Geol. Sci., N0 77/11.
  13. Clausen, O.R., Gregersen, U., Michelsen, O., SØrensen, J.C. (1999) Factors controlling the Cenozoic sequence development in the eastern parts of the North Sea. J. Geol. Soc. London, 156, 809–816.
    [Google Scholar]
  14. Cloetingh, S., Reemst, P., Kooi, H., Fanavoll, S. (1992) Intraplate stresses and the post‐Cretaceous uplift and subsidence in northern Atlantic basins. Norsk Geol. Tidsskrift, 72, 229–235.
    [Google Scholar]
  15. Coleman, J.M. & Roberts, H.H. (1989) Deltaic coastal wetlands. Geol. Mijnb., 68, 1–24.
    [Google Scholar]
  16. Davis, J.C. (1986). Statistics and Data Analysis in Geology, 2nd edn. John Wiley & Sons, Inc.
    [Google Scholar]
  17. Emery, D. & Myers, K., Eds (1996) Sequence Stratigraphy. Blackwell Science Ltd, Oxford.
    [Google Scholar]
  18. Evans, D., Mcgiveron, S., McNeill, A.E., Harrison, Z.H., Østmo, S.R., Wild, J.B.L. (2000) Plio‐Pleistocene deposits on the mid‐Norwegian margin and their implications for Late Cenozoic uplift of the Norwegian mainland. Global Planetary Change, 24, 233–237.
    [Google Scholar]
  19. Eyles, N. (1993) Earth's glacial record and its tectonic setting. Earth-Sci. Rev., 35, 1–248.
    [Google Scholar]
  20. Friis, H. (1974) Weathered heavy mineral associations from the young Tertiary deposits of Jutland, Denmark. Sediment. Geol., 12, 199–213.
    [Google Scholar]
  21. Funnell, B.M. (1996) Plio‐Pleistocene paleogeography of the Southern North Sea basin (3.75–0.60 Ma). Quat. Sci. Rev., 15, 391–405.
    [Google Scholar]
  22. Galloway, W.E. (1989) Genetic stratigraphic sequences in basin analysis I: architecture and genesis of flooding‐ surface bounded depositional units. AAPG Bull., 73, 143–154.
    [Google Scholar]
  23. Ghazi, S.A. (1992) Cenozoic uplift in the Stord Basin area and its consequences for exploration. Norsk Geol. Tidsskrift, 72, 285–290.
    [Google Scholar]
  24. Gibbard, P.L. (1988) The history of the great northwest European rivers during the past three million years. Phil. Trans. R. Soc. London B, 318, 559–602.
    [Google Scholar]
  25. Glennie, K.W. (1990) Introduction to the Petroleum Geology of the North Sea, 3rd edn. Blackwell Science, Oxford.
    [Google Scholar]
  26. Gradstein, F.M., Kristiansen, I.L., Loemo, L., Kaminski, M. (1992) Cenozoic foraminiferal and dinoflagellate cyst biography of the Central North Sea. Micropaleontology, 38, 101–137.
    [Google Scholar]
  27. Hansen, S. (1996) Quantification of net uplift and erosion on the Norwegian Shelf south of 66ø N from sonic transit times of shale. Norsk Geol. Tidsskrift, 76, 245–252.
    [Google Scholar]
  28. Haq, B.U. (1991) Sequence stratigraphy, sea‐level change, and significance for the deep sea. In: Sedimentation, Tectonics and Eustasy; Sea‐Level Changes at Active Margins (Ed. by D.I.M.Macdonald ), Spec. Publ. Int. Ass. Sedimentol., 12.
  29. Harland, W.B., Armstrong, R.A., Cox, A.V., Craig, L.E., Smith, A.G., Smith, D.G. (1990). A Geological Time Scale 1989. Cambridge University Press, Cambridge, UK.
    [Google Scholar]
  30. Hovius, N. & Leeder, M. (1998) Clastic sediment supply to basins. Basin Res., 10, 1–5.
    [Google Scholar]
  31. Huuse, M. (2000) Late Cenozoic paleogeography of the eastern North Sea Basin: climatic vs tectonic forcing of basin margin uplift and deltaic progradation. Bull. Geol. Soc. Denmark, 47.
  32. Jansen, E., Bleil, U., Henrich, R., Kringstad, L., Slettemark, B. (1988) Paleoenvironmental changes in the Norwegian Sea and the Northeast Atlantic during the last 2.8 m.y., Deep Sea Drilling Project/ODP sites 610, 642, 643 and 644. Paleocenanography, 3, 563–581.
    [Google Scholar]
  33. Jansen, E., Sjoholm, J., Bleil, U., Erichsen, J.A. (1990) Neogene and Pleistocene glaciations in the Northern Hemisphere and late Miocene‐Pliocene global ice Volume fluctuations; evidence from the Norwegian Sea. In: Geological History of the Polar Oceans; Arctic Versus Antarctic (Ed. by U.Bleil & J. Thiede). Kluwer, Dordrecht.
  34. Japsen, P. & Chalmers, J.A. (2000) Neogene uplift and tectonics around the North Atlantic: overview. Global Planetary Change, 24, 165–173.
    [Google Scholar]
  35. Jensen, L.N. & Schmidt, B.J. (1992) Late Tertiary uplift and erosion in the Skagerak area; magnitude and consequences. Norsk Geol. Tidsskrift, 72, 275–279.
    [Google Scholar]
  36. Jervey, M.T. (1988) Quantitative geological modelling of siliclastic rock sequences and their seismic expression. In: Sea Level Changes – an Integrated Approach (Ed. by C.K.Wilgus , H.Posamentier , C.A.Roos & C.Kendall) , SEPM Spec. Publ., 42 .
  37. Jordt, H., Faleide, J.I., Bjørlykke, K., Ibrahim, M.T. (1995) Cenozoic sequence stratigraphy of the central and northern North Sea Basin: tectonic development, sediment distribution and povenance areas. Mar. Petrol. Geol., 12, 845–879.
    [Google Scholar]
  38. Joy, A.M. (1992) Right place, wrong time: anamalous post‐rift subsidence in sedimentary basins around the North Atlantic Ocean. In: Magmatism and the Causes of Continental Break‐up (Ed. by B.C. Storey, T. Alabaster & R.J. Pankhurst), Geol. Soc. Spec. Publ., 68, 387–393.
    [Google Scholar]
  39. Kirkby, M.J. (1994) Process Models and Theoretical Geomorphology. John Wiley, New York.
    [Google Scholar]
  40. Knudsen, K.L. (1985) Foraminiferal stratigraphy of Quaternary deposits in the Roar, Skjold and Dan fields, central North Sea. Boreas, 14, 311–324.
    [Google Scholar]
  41. Knudsen, K.L. & Asbjørndottir, L. (1991) Plio‐Pleistocene foraminiferal stratigraphy and correlation in the Central North Sea. Mar. Geol., 101, 113–124.
    [Google Scholar]
  42. Konradi, P.B. (1995) Foraminiferal biostratigraphy of the post mid‐Miocene in two boreholes in the Danish North Sea. In: Proceedings of the 2nd Symposium on Marine Geology, Geology of the North Sea and Skagerak (Ed. by O.Michelsen ). Aarhus Universitet.
    [Google Scholar]
  43. Konradi, P.B. (1996) Foraminiferal biostratigraphy of the post‐mid Miocene in the Danish Central Trough, North Sea. In: Geology of Siliciclastic Shelf Seas (Ed. by M.De Batist & P. Jacobs), Geol. Soc. Spec. Publ., 117, 000–000.
  44. Kooi, H., Cloetingh, S., Remmelts, G. (1989) Intraplate stresses and the stratigraphic evolution of the North Sea Central Graben. Geol. Mijnb., 68, 49–72.
    [Google Scholar]
  45. Kooi, H., Hettema, M., Cloetingh, S. (1991) Lithosperic dynamics and the rapid Pliocene‐Quaternary subsidence phase in the southern North Sea Basin. Tectonophysics, 192, 245–259.
    [Google Scholar]
  46. Kosmowska‐Czeranowicz, B. (1988) Geheimnisse und Schonheit des Bernsteins. In: Ganzelewski, M. and Slotta, R. (1996) Bernstein; Traner der Gotter.Katalog der Ausstellung Des Deutschen Bergbau‐ Museums, Bochum.
    [Google Scholar]
  47. Leeder, M.R., Harris, T., Kirkby, M.J. (1998) Sediment supply and climate change: implications for basin stratigraphy. Basin Res., 10, 7–18.
    [Google Scholar]
  48. Lidmar‐Bergström, K. (1996) Long term morphotectonic evolution in Sweden. Geomorphology, 16, 33–59.DOI: 10.1016/0169-555X(95)00083-H
    [Google Scholar]
  49. Lidmar‐Bergström, K., Ollier, C.D., Sulebak, J.R. (2000) Landforms and uplift history of Southern Norway. Global Planetary Change, 24, 211–231.
    [Google Scholar]
  50. Liu, X. & Galloway, W.E. (1997) Quantitative determination of Tertiary sediment supply to the North Sea Basin. AAPG Bull., 81, 1482–1509.
    [Google Scholar]
  51. Miall, A.D. (1997). The Geology of Stratigraphic Sequences. Springer‐Verlag, Berlin.
    [Google Scholar]
  52. Michelsen, O., Danielsen, M., Heilmann‐Clausen, C., Jordt, H., Laursen, G., Thomsen, E. (1995) Occurrence of major sequence boundaries in relation to basin development in Cenozoic deposits of the southeastern North Sea. In: Sequence Stratigraphy; Advances and Applications for Exploration and Production in North West Europe (Ed. by R.J.Stell , W.L.Felt , E.P.Johannessen & C. Mathieu), pp. 415–427. Norwegian Petroleum Society/Elsevier, Amsterdam.
    [Google Scholar]
  53. Michelsen, O., Thomsen, E., Danielsen, M., Heilman‐ Clausen, C., Jordt, H., Laursen, G.V. (1998) Cenozoic stratigraphy in the Eastern North Sea. In: Mesozoic and Cenozoic Sequence Stratigraphy of European Basins, Society for Sedimentary Geology,SEPM Spec. Publ., 60, 91–118.
    [Google Scholar]
  54. Middelkoop, H. (Ed.) (1998) Twee Rivieren: Rijn En Maas in Nederland. RIZA rapportno 98.041. RIZA, Arnhem.
    [Google Scholar]
  55. Miller, K.G., Fairbanks, R.G., Mountain, G.S. (1987) Tertiary oxygen isotope synthesis, sea level history and continental margin erosion. Paleoceanography, 2, 1–19.
    [Google Scholar]
  56. Milliman, J.D. & Syvitski, P.M. (1992) Geomorphic/Tectonic control of sediment discharge to the ocean; the importance of small mountaineous rivers. J. Geol., 100, 525–544.
    [Google Scholar]
  57. Mitchum, R.M. & Van Wagoner, J.C. (1991) High frequency sequences and their stacking patterns; sequence stratigraphic evidence of high frequency eustatic changes. Sediment. Geol., 70, 131–160.
    [Google Scholar]
  58. Molnar, P. & England, P. (1990) Late Cenozoic uplift of mountain ranges and global climate change; chicken or egg?Nature, 346, 29–34.
    [Google Scholar]
  59. OvereemI., Drijkoningen, G.G., Steeghs, T.P.H., Van De Bilt, B.D. (2001) Modeling mass movements along Cenozoic delta lobes, 3D seismic data analysis in the F09 block, North Sea. . 63rd Annual Conference of European Association of Geoscientists & Engineers, Amsterdam, 11–15 June 2001, :in press.
    [Google Scholar]
  60. Payton, C.E. (Ed.) (1977) Seismic Stratigraphy – Applications to Hydrocarbon Exploration. AAPG Memoir 26. AAPG, Tulsa, OK.
    [Google Scholar]
  61. Posamentier, H.W., Jervey, M.T., Vail, P.R. (1988a) Eustatic controls on clastic deposition conceptual framework. In: Sea Level Changes – an Integrated Approach (Ed. by C.K.Wilgus , H.Posamentier , C.A.Roos & C.Kendall) , SEPM Spec. Publ., 42.
  62. Posamentier, H.W., Jervey, M.T., Vail, P.R. (1988b) Eustatic controls on clastic deposition‐sequence and system tract models. In: Sea Level Changes – an Integrated Approach (Ed. by C.K.Wilgus , H.Posamentier , C.A.Roos & C.Kendall) , SEPM Spec. Publ., 42 .
  63. Press, W.H., Teukolsky, S.A., Vetterling, W.T., Flannery, B.P. (1992) Numerical Recipes in C; The Art of Scientific Computing, 2nd edn. Cambridge University Press, Cambridge.
    [Google Scholar]
  64. Riis, F. (1992) Dating and measuring of erosion, uplift and subsidence in Norway and the Norwegian shelf in glacial periods. Norsk Geol. Tidsskrift, 72, 325–331.
    [Google Scholar]
  65. Riis, F. (1996) Quantification of Cenozoic vertical movements of Scandinavia by correlation of morphological surfaces with offshore data. Global Planetary Change, 12, 331–357.
    [Google Scholar]
  66. Rohrman, M., Andriessen, P., Van Der Beek, P. (1996) The relationship between basin and margin thermal evolution assessed by fission track thermochronology; an application to offshore southern Norway. Basin Res., 8, 45–63.
    [Google Scholar]
  67. Rohrman, M., Van Der Beek, P., Andriessen, P., Cloetingh, S. (1995) Meso‐Cenozoic evolution of southern Norway; Neogene domal uplift inferred from apatite fission track thermochronology. Tectonics, 14, 704–718.
    [Google Scholar]
  68. Sales, J.K. (1992) Uplift and subsidence of northwestern Europe; possible causes and influence on hydrocarbon productivity. Norsk Geol. Tidsskrift, 72, 253–258.
    [Google Scholar]
  69. Schwarzbach, M. (1974) Das Klima der vorzeit;. Eine Einführung in die Paläoklimatologie. Ferdinand Enke‐Verlag. Stuttgart.
    [Google Scholar]
  70. Sha, L.P., Schwartz, C., Maenhout Van Lemberge, V., Cameron, T.D.J., Zællmer, V., Konradi, P., Laban, C., Streif, H., Schüttenhelm, R.T.E. (1996) Quaternary Sedimentary Sequences in the Southern North Sea Basin. Sedimentological Working Group of the Southern North Sea Project. Commission of the European communities: directorate general, XII, Science Programme Contract no. Sci.* ‐128‐C 9 EDB. Dutch Geological Survey, Haarlem, The Netherlands.
  71. Shackleton, N.J. (1987) Oxygen isotopes, ice volume and sea level. Quat. Sci. Rev., 6, 183–190.
    [Google Scholar]
  72. Shackleton, N.J. & Opdyke, N.D. (1977) Oxygen isotope and palaeomagnetic evidence for early Northern Hemisphere glaciation. Nature, 270, 216–219.
    [Google Scholar]
  73. SØrensen, J.C., Gregersen, U., Breiner, M., Michelsen, O. (1997) High frequency sequence stratigraphy of upper Cenozoic deposits. Mar. Petrol. Geol., 14, 99–123.
    [Google Scholar]
  74. Steeghs, T.P.H., Overeem, I., Tigrek, S. (2001) Seismic volume attribute analysis of the Cenozoic succession in the L08 block (Southern North Sea). Global Planetary Change, :in press.
    [Google Scholar]
  75. Streif, H. & (koordinator ) (1996) Deutsche Beiträge zur Quartärforschung in der Südlichen Nordsee. Geol. Jbh, Reihe A, Heft 146.
  76. Stuevold, L.M. & Eldholm, O. (1996) Cenozoic uplift of Fennoscandia inferred from a study of the mid‐Norwegian margin. Global Planetary Change, 12, 359–386.
    [Google Scholar]
  77. Tigrek, S. (1998) 3D seismic interpretation and attribute analysis of the L08‐block, Southern North Sea Basin. Unpublished MSc Thesis, Faculty of Applied Earth Sciences, Delft University of Technology, The Netherlands.
  78. Van De Bilt, B.D. (2000) The architectural evolution of Late Cenozoic delta lobes in the F09 block, North Sea. Unpublished MSc Thesis, Free University, Amsterdam, The Netherlands.
  79. Van Wagoner, J.C., Posamentier, H.W., Mitchum, R.M., Vail, P.R., Sarg, J.F., Loutit, T.S., Hardenbol, J. (1988) An overview of the fundamentals of sequence stratigraphy and key definitions. In: Sea Level Changes – an Integrated Approach (Ed. by C.K.Wilgus , H.Posamentier , C.A.Roos & C.Kendall) , SEPM Spec. Publ., 42, 39–45.
  80. Vinken, R. (Ed.) (1988) The Northwest European Tertiary Basin; results of the international geological correlation programme. Geol. Jbh.Reihe A, Heft 100.
  81. Weltje, G.J., Meijer, X., De Boer, P.L. (1998) Stratigraphic inversion of siliciclastic basin fills: a note on the distinction between supply signals resulting from tectonic and climatic forcing. Basin Res., 10, 129–153.
    [Google Scholar]
  82. Wood, A.M., Whatley, R.C., Cronin, T.M., Holtz, T. (1993) Pliocene paleotemperature reconstruction for the Southern North Sea based on Ostracoda. Quat. Sci. Reviews, 12, 747–767.
    [Google Scholar]
  83. Zagwijn, W.H. (1989) The Netherlands during the Tertiary and the Quaternary; a case history of coastal lowland evolution. Geol. Mijnb., 68, 107–120.
    [Google Scholar]
  84. Zagwijn, W.H. & Doppert, J.W.C. (1987) Upper Cenozoic of the southern North Sea Basin: Paleoclimatic and paleogeographic evolution. Geol. Mijnb., 57, 577–588.
    [Google Scholar]
  85. Zagwijn, W.H. & Hager, H. (1987) Correlations of continental and marine Neogene deposits in the south‐eastern Netherlands and the Lower Rhine District. Meded. Werkgr. Tert, Kwart. Geol., 24, 59–78.
    [Google Scholar]
  86. Zandstra, J.G. (1971) Geologisch onderzoek in de stuwwal van de oostelijke Veluwe bij Hattem en Wapenfeld. Mededelingen Van Rijks Geologische Dienst., 22, 215–258.
    [Google Scholar]
  87. Ziegler, P.A. (1990) Geological Atlas of Western and Central Europe, 2nd edn. Shell internationale Petroleum maatschappij, BV, Geological Society.
    [Google Scholar]
  88. Zubakov, V.A. & Borzenkova, I.I. (1990) Global Palaeoclimate of the Late Cenozoic. Developments in Palaeontology and Stratigraphy 12. Elsevier. Amsterdam.
    [Google Scholar]
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