The High Plains of Southern Norway: Result of Late Mesozoic – Cenozoic Episodic Tectonics

Main Article Content

Johan M. Bonow
James A. Chalmers
Peter Japsen

Abstract

The origin of the mountains of Norway (the Scandes) is controversial. Here we show that the high-level landscape of the Southern Scandes consists mostly of three extensive, low-relief surfaces separated by escarpments. The surfaces extend across 90,000 km2 and cut across rocks of different lithologies and post-date the Jurassic surface on the slopes of the Southern Scandes. The surfaces are peneplains graded by river erosion to a base level of sea level during the Late Cretaceous, Paleocene and Miocene. They were all subsequently slightly folded, tilted and uplifted to their present elevations of 1000–1400, 1300–1700 and 1600–1900 m, forming a landscape with distinct steps. The final uplift began in the early Pliocene and caused incision of fluvial valleys and exhumation of the Jurassic surface stripped from its protective cover of Jurassic and younger sediments. Many fluvial valleys were reshaped into glacial valleys and fjords during the Quaternary, while the stepped peneplains kept much of their pre-glacial appearance.  The Scandes have not remained high since the Caledonian Orogeny, they are not shaped by footwall uplift and the plateau surfaces are not the result of glacial erosion. The repeated episodes of subsidence and uplift, burial and exhumation that shaped the high-level landscape of the Southern Scandes were driven by sub-lithospheric forces and intra-plate stress. This landscape resembles the elevated passive continental margins (EPCMs) that occur globally in all climate zones. The observations reported here provide important constraints on studies of the tectonic development of western Scandinavia and other EPCMs.

Article Details

How to Cite
Bonow, J. M., Chalmers, J. A., & Japsen, P. (2026). The High Plains of Southern Norway: Result of Late Mesozoic – Cenozoic Episodic Tectonics. τeκτoniκa, 4(1), 132–161. https://doi.org/10.55575/tektonika2026.4.1.112
Section
Articles
Author Biography

Johan M. Bonow, Department of Human Geography, Uppsala University, Uppsala, Sweden

Department of Human Geography

Senior Lecturer 

References

Ahlmann, H. W. (1919), Geomorphological Studies in Norway, Geografiska annaler, 1(2), 193–252, https://doi.org/10.1080/20 014422.1919.11880647.

Ahlmann, H. W. (1941), Part I. The main morphological features of north-east Greenland, Geografiska annaler, 23(3-4), 148–182, https://doi.org/10.1080/20014422.1941.11880699.

Andersen, T. B., T. H. Torsvik, E. A. Eide, P. T. Osmundsen, and J. I. Faleide (1999), Permian and Mesozoic extensional faulting within the Caledonides of central south Norway, Journal of the Geological Society, 156(6), 1073–1080, https://doi. org/10.1144/gsjgs.156.6.1073.

Andresen, A. (2021), Lithostratigraphic and structural data from Hardangervidda, southern Norway supporting extended interaction between Avalonia and Baltica, Geological Society Special Publication, 503(1), 235–250, https://doi.org/10.1144/ sp503-2020-79.

Balling, N., B. H. Jacobsen, and S. B. Nielsen (2026), Deep structure of the Scandinavian Caledonides and the Baltic Shield: a review with new integrated gravity–isostatic and thermal modelling, Geological Society Special Publication, 557 (1), 247–299, https://doi.org/10.1144/gslspecpub2025-26.

Bernard, M., P. A. van der Beek, V. K. Pedersen, and C. Colleps (2025), Production and preservation of elevated low-relief surfaces in mountainous landscapes by Pliocene-Quaternary glaciations, AGU Advances, 6(3), e2024AV001,610, https://doi. org/10.1029/2024av001610.

Bonow, J. M., and P. Japsen (2021), Peneplains and tectonics in North-East Greenland after opening of the North-East Atlantic, GEUS Bulletin, 45(1), 1–39, https://doi.org/10.34194/geusb.v45.5297.

Bonow, J. M., K. Lidmar-Bergstrøm, and J.-O. Naslund (2003), Palaeosurfaces and major valleys in the area of the Kjølen Mountains southern Norway - consequences of uplift and climatic change, Norsk geografisk tidsskrift. Norwegian journal of geography, 57 (2), 83–101, https://doi.org/10.1080/00291950310001360.

Bonow, J. M., P. Japsen, K. Lidmar-Bergström, J. A. Chalmers, and A. K. Pedersen (2006a), Cenozoic uplift of Nuussuaq and Disko, West Greenland—elevated erosion surfaces as uplift markers of a passive margin, Geomorphology (Amsterdam, Netherlands), 80(3-4), 325–337, https://doi.org/10.1016/j.geomorph.2006.03.006.

Bonow, J. M., K. Lidmar-Bergström, and P. Japsen (2006b), Palaeosurfaces in central West Greenland as reference for identification of tectonic movements and estimation of erosion, Global and Planetary Change, 50(3-4), 161–183, https://doi.org/10.1016/j.gloplacha.2005.12.011.

Bonow, J. M., P. Japsen, P. F. Green, P. R. Cobbold, A. J. Pedreira, R. Lilletveit, and D. Chiossi (2009), Post-rift landscape development of north-east Brazil, Geological Survey of Denmark and Greenland Bulletin, 17, 81–84, https://doi.org/10.34194/geusb.v17.5020.

Bonow, J. M., P. Japsen, and T. F. D. Nielsen (2014), High-level landscapes along the margin of southern East Greenland—A record of tectonic uplift and incision after breakup in the NE Atlantic, Global and Planetary Change, 116, 10–29, https://doi.org/10.1016/j.gloplacha.2014.01.010.

Brekke, H., H. I. Sjulstad, C. Magnus, and R. W. Williams (2001), Sedimentary environments offshore norway — an overview, in Norwegian Petroleum Society Special Publications, Special Publication / Norwegian Petroleum Society (NPF), vol. 10, edited by O. J. Martinsen and T. Dreyer, pp. 7–37, Elsevier, https://doi.org/10.1016/s0928-8937(01)80006-0.

Bøe, R., H. Fossen, and M. Smelror (2010), Mesozoic sediments and structures onshore Norway and in the coastal zone, Norwegian Journal of Geology, 450, 15–32.

Campbell, I. H. (2007), Testing the plume theory, Chemical Geology, 241(3-4), 153–176, https://doi.org/10.1016/j.chemgeo.20 07.01.024.

Davis, W. M. (1899), The Geographical Cycle, The Geographical Journal, 14(5), 481, https://doi.org/10.2307/1774538.

Doré, A. G., E. R. Lundin, L. N. Jensen, o. Birkeland, P. E. Eliassen, and C. Fichler (1999), Principal tectonic events in the evolution of the northwest European Atlantic margin, in Petroleum Geology of Northwest Europe: Proceedings of the 5th Conference, Geological Society London Petroleum Geology Conference Series, vol. 5, edited by A. J. Fleet and S. A. R. Boldy,

pp. 41–61, Geological Society of London, London, https://doi.org/10.1144/0050041.

Egholm, D. L., J. D. Jansen, C. F. Brædstrup, V. K. Pedersen, J. L. Andersen, S. V. Ugelvig, N. K. Larsen, and M. F. Knudsen (2017), Formation of plateau landscapes on glaciated continental margins, Nature Geoscience, 10(8), 592–597, https://doi.org/10.1038/ngeo2980.

Egli, D., and N. Mancktelow (2013), The structural history of the Mont Blanc massif with regard to models for its recent exhumation, Swiss Journal of Geosciences, 106(3), 469–489, https://doi.org/10.1007/s00015-013-0153-5.

Etzelmüller, B., B. Romstad, and J. Fjellanger (2007), Automatic regional classification of topography in Norway, Norsk geologisk tidsskrift, 87.

Evans, D., C. Graham, A. Armour, and P. Bathurst (Eds.) (2003), The Millennium Atlas: Petroleum Geology of the Central and Northern North Sea, vol. 140, Cambridge University Press (CUP), London, UK, https://doi.org/10.1017/s0016756803218124.

Fjellanger, J., and B. Etzelmuller (2003), Veikimorener i Finnmark, Nord-Norge, Norsk geografisk tidsskrift. Norwegian journal of geography, 57 (2), 102–110, https://doi.org/10.1080/00291950310001388.

Fossen, H. (2000), Extensional tectonics in the Caledonides: Synorogenic or postorogenic?, Tectonics, 19(2), 213–224, https://doi.org/10.1029/1999tc900066.

Fossen, H., G. Mangerud, J. Hesthammer, T. Bugge, and R. Gabrielsen (1997), The Bjorøy Formation: a newly discovered occurrence of Jurassic sediments In the Bergen Are System, Norsk geologisk tidsskrift, 77 (4), 269–287.

Fredin, O., B. Bergstrøm, R. Eilertsen, L. Hansen, O. Longva, A. Nesje, and H. Sveian (2013), Glacial landforms and Quaternary landscape development in Norway, Quaternary Geology of Norway, edited by: Olsen, L. , Fredin, O. , and Olesen, O. , Geological Survey of Norway Special Publication, Geological Survey of Norway, Trondheim, 525.

Fredin, O., G. Viola, H. Zwingmann, R. Sørlie, M. Brönner, J.-E. Lie, E. M. Grandal, A. Müller, A. Margreth, C. Vogt, and J. Knies (2017), The inheritance of a Mesozoic landscape in western Scandinavia, Nature Communications, 8(1), 14,879, https://doi.org/10.1038/ncomms14879.

Frisch, W., M. Meschede, and R. C. Blakey (2022), Plate tectonics: Continental drift and mountain building, Springer Textbooks in Earth Sciences, Geography and Environment, 2 ed., 149–158 pp., Springer Nature, Cham, Switzerland, https://doi.org/ 10.1007/978-3-030-88999-9.

Gabrielsen, R. H., J. P. Nystuen, E. M. Jarsve, and A. M. Lundmark (2015), The Sub-Cambrian Peneplain in southern Norway: its geological significance and its implications for post-Caledonian faulting, uplift and denudation, Journal of the Geological Society, 172(6), 777–791, https://doi.org/10.1144/jgs2014-154.

Gaina, C., A. Nasuti, G. S. Kimbell, and A. Blischke (2017), Break-up and seafloor spreading domains in the NE Atlantic, Geological Society Special Publication, 447 (1), 393–417, https://doi.org/10.1144/sp447.12.

Gee, D. G., H. Fossen, N. Henriksen, and A. K. Higgins (2008), From the early Paleozoic platforms of baltica and Laurentia to the caledonide orogen of Scandinavia and Greenland, Episodes, 31(1), 44–51, https://doi.org/10.18814/epiiugs/2008/v31i1/007.

Gernon, T. M., T. K. Hincks, S. Brune, J. Braun, S. M. Jones, D. Keir, A. Cunningham, and A. Glerum (2024), Coevolution of craton margins and interiors during continental break-up, Nature, 632(8024), 327–335, https://doi.org/10.1038/s41586-0 24-07717-1.

Gjessing, J. (1967), Norway’s paleic surface, Norsk geografisk tidsskrift. Norwegian journal of geography, 21(2), 69–132, https://doi.org/10.1080/00291956708621854.

Green, P. F., K. Lidmar-Bergström, P. Japsen, J. M. Bonow, and J. A. Chalmers (2013), Stratigraphic landscape analysis, thermochronology and the episodic development of elevated, passive continental margins, Geological Survey of Denmark and Greenland Bulletin, 30, 1–150, https://doi.org/10.34194/geusb.v30.4673.

Green, P. F., P. Japsen, J. A. Chalmers, J. M. Bonow, and I. R. Duddy (2018), Post-breakup burial and exhumation of passive continental margins: Seven propositions to inform geodynamic models, Gondwana Research: International Geoscience Journal, 53, 58–81, https://doi.org/10.1016/j.gr.2017.03.007.

Green, P. F., P. Japsen, J. M. Bonow, J. A. Chalmers, I. R. Duddy, and I. T. Kukkonen (2022), The post-Caledonian thermo-tectonic evolution of Fennoscandia, Gondwana Research: International Geoscience Journal, 107, 201–234, https://doi.org/10.1016/j.gr.2022.03.007.

Hall, A. M., and J. Kleman (2014), Glacial and periglacial buzzsaws: fitting mechanisms to metaphors, Quaternary Research, 81(2), 189–192, https://doi.org/10.1016/j.yqres.2013.10.007.

Hall, A. M., K. Ebert, J. Kleman, A. Nesje, and D. Ottesen (2013), Selective glacial erosion on the Norwegian passive margin, Geology, 41(12), 1203–1206, https://doi.org/10.1130/g34806.1.

Hendriks, B., P. Andriessen, Y. Huigen, C. Leighton, T. Redfield, G. Murrell, K. Gallagher, and S. Nielsen (2007), A fission track data compilation for Fennoscandia, Norwegian Journal of Geology, 87 (1-2), 227–229.

Hestnes, A., K. Drost, T. O. Sømme, D. Gasser, T. Scheiber, H. Linge, D. Chew, and J. Jacobs (2023), Constraining the tectonic evolution of rifted continental margins by U-Pb calcite dating, Scientific Reports, 13(1), 7876, https://doi.org/10.1038/s415 98-023-34649-z.

Holtedahl, O. (1954), On the oblique uplift of some northern lands, Norsk geografisk tidsskrift. Norwegian journal of geography, 14(1-4), 132–139, https://doi.org/10.1080/00291955308542721.

Hättestrand, C., and A. P. Stroeven (2002), A relict landscape in the centre of Fennoscandian glaciation: Geomorphological evidence of minimal Quaternary glacial erosion, Geomorphology (Amsterdam, Netherlands), 44(1-2), 127–143, https://doi.or g/10.1016/s0169-555x(01)00149-0.

Iaffaldano, G., and C. DeMets (2016), Late Neogene changes in North America and Antarctica absolute plate motions inferred from the Mid-Atlantic and Southwest Indian Ridges spreading histories, Geophysical Research Letters, 43(16), 8466–8472, https://doi.org/10.1002/2016gl070276.

Japsen, P., and J. A. Chalmers (2000), Neogene uplift and tectonics around the North Atlantic: overview, Global and Planetary Change, 24(3-4), 165–173, https://doi.org/10.1016/s0921-8181(00)00006-0.

Japsen, P., J. M. Bonow, P. F. Green, J. A. Chalmers, and K. Lidmar-Bergström (2009), Formation, uplift and dissection of planation surfaces at passive continental margins - a new approach, Earth Surface Processes and Landforms, 34(5), 683–699, https://doi.org/10.1002/esp.1766.

Japsen, P., J. A. Chalmers, P. F. Green, and J. M. Bonow (2012a), Elevated, passive continental margins: Not rift shoulders, but expressions of episodic, post-rift burial and exhumation, Global and Planetary Change, 90-91, 73–86, https://doi.org/10.1016/j.gloplacha.2011.05.004.

Japsen, P., J. M. Bonow, P. F. Green, P. R. Cobbold, D. Chiossi, R. Lilletveit, L. P. Magnavita, and A. Pedreira (2012b), Episodic burial and exhumation in NE Brazil after opening of the South Atlantic, Geological Society of America Bulletin, 124(5-6), 800–816, https://doi.org/10.1130/b30515.1.

Japsen, P., P. F. Green, J. M. Bonow, and M. Erlström (2016), Episodic burial and exhumation of the southern Baltic Shield: Epeirogenic uplifts during and after break-up of Pangaea, Gondwana Research: International Geoscience Journal, 35, 357–377, https://doi.org/10.1016/j.gr.2015.06.005.

Japsen, P., P. F. Green, J. A. Chalmers, and J. M. Bonow (2018), Mountains of southernmost Norway: uplifted Miocene peneplains and re-exposed Mesozoic surfaces, Journal of the Geological Society, 175(5), 721–741, https://doi.org/10.1144/jg s2017-157.

Japsen, P., P. F. Green, J. M. Bonow, M. Bjerager, and J. R. Hopper (2021), Episodic burial and exhumation in North-East Greenland before and after opening of the North-East Atlantic, Geological Survey of Denmark and Greenland Bulletin, 45(2), 162, https://doi.org/10.34194/geusb.v45.5299.

Japsen, P., P. F. Green, and J. A. Chalmers (2023), Synchronous exhumation episodes across Arctic Canada, North Greenland and Svalbard in relation to the Eurekan Orogeny, Gondwana Research: International Geoscience Journal, 117, 207–229, https://doi.org/10.1016/j.gr.2023.01.011.

Japsen, P., P. F. Green, J. A. Chalmers, and J. M. Bonow (2024), Episodes of post-Caledonian burial and exhumation in Greenland and Fennoscandia, Earth-Science Reviews, 248(104626), 104,626, https://doi.org/10.1016/j.earscirev.2023.104626.

Japsen, P., P. F. Green, and J. M. Bonow (2025), Ups and downs of the Guiana Shield and Amazon Basin over the last 500 Myr, Gondwana Research: International Geoscience Journal, 148, 415–444, https://doi.org/10.1016/j.gr.2025.06.020.

Jarsve, E. M., J. I. Faleide, R. H. Gabrielsen, and J. P. Nystuen (2014), Mesozoic and cenozoic basin configurations in the North Sea, in From Depositional Systems to Sedimentary Successions on the Norwegian Continental Margin, edited by A. W. Martinius, R. Ravnås, J. Howell, T. Olsen, R. J. Steel, and J. Wonham, pp. 417–452, John Wiley & Sons, Ltd, Chichester, UK, https://doi.org/10.1002/9781118920435.ch15.

Jensen, L., and B. Schmidt (1992), Late Tertiary uplift and erosion in the Skagerrak area : magnitude and consequences, Norsk geologisk tidsskrift, 72(3), 275–279.

Jess, S., A. L. Peace, and C. Schiffer (2020), Sediment supply on the West Greenland passive margin: redirection of a large pre-glacial drainage system, Journal of the Geological Society, 177 (6), 1149–1160, https://doi.org/10.1144/jgs2020-028.

King, L. C. (1967), Morphology of the earth (2nd edition), Mineralogical Society, Edinburgh, https://doi.org/10.1180/minmag.1967.036.279.23.

Kleman, J. (1994), Preservation of landforms under ice sheets and ice caps, Geomorphology (Amsterdam, Netherlands), 9(1), 19–32, https://doi.org/10.1016/0169-555x(94)90028-0.

Kleman, J. (2008), Where glaciers cut deep: Geomorphology, Nature Geoscience, 1(6), 343–344, https://doi.org/10.1038/ngeo 210.

Kleman, J., and N. Glasser (2007), The subglacial thermal organisation (STO) of ice sheets, Quaternary Science Reviews, 26(5-6), 585–597, https://doi.org/10.1016/j.quascirev.2006.12.010.

Kley, J., and T. Voigt (2008), Late Cretaceous intraplate thrusting in central Europe: Effect of Africa-Iberia-Europe convergence, not Alpine collision, Geology, 36(11), 839, https://doi.org/10.1130/g24930a.1.

Ksienzyk, A. K., I. Dunkl, J. Jacobs, H. Fossen, and F. Kohlmann (2014), From orogen to passive margin: constraints from fission track and (U–Th)/He analyses on Mesozoic uplift and fault reactivation in SW Norway, Geological Society Special Publication, 390(1), 679–702, https://doi.org/10.1144/sp390.27.

Köykkä, J. (2011), Precambrian alluvial fan and braidplain sedimentation patterns: Example from the Mesoproterozoic Rjukan Rift Basin, southern Norway, Sedimentary Geology, 234(1-4), 89–108, https://doi.org/10.1016/j.sedgeo.2010.12.004.

Larsen, B. T., S. Olaussen, B. Sundvoll, and M. Heeremans (2008), The Permo-Carboniferous Oslo Rift through six stages and 65 million years, Episodes, 31(1), 52–58, https://doi.org/10.18814/epiiugs/2008/v31i1/008.

Leopold, L. B., and W. B. Bull (1979), Base level, aggradation, and grade, Proceedings of the American Philosophical Society, 123(3), 168–202.

Lidmar-Bergström, K. (1982), Pre-Quaternary geomorphological evolution in southern Fennoscandia, Dissertation abstracts international. C. European abstracts, 44(3), 1–202.

Lidmar-Bergström, K. (1999), Uplift histories revealed by landforms of the Scandinavian domes, Geological Society Special Publication, 162(1), 85–91, https://doi.org/10.1144/gsl.sp.1999.162.01.07.

Lidmar-Bergström, K., C. D. Ollier, and J. R. Sulebak (2000), Landforms and uplift history of southern Norway, Global and Planetary Change, 24(3-4), 211–231, https://doi.org/10.1016/s0921-8181(00)00009-6.

Lidmar-Bergström, K., J. M. Bonow, and P. Japsen (2013), Stratigraphic Landscape Analysis and geomorphological paradigms: Scandinavia as an example of Phanerozoic uplift and subsidence, Global and Planetary Change, 100, 153–171, https://doi.or g/10.1016/j.gloplacha.2012.10.015.

Liu, F., H. Gao, B. Pan, Z. Li, and H. Su (2019), Quantitative analysis of planation surfaces of the upper Yangtze River in the Sichuan-Yunnan Region, Southwest China, Frontiers of Earth Science, 13(1), 55–74, https://doi.org/10.1007/s11707-018-0 707-y.

Lloyd, C. T., C. D. Clark, and D. A. Swift (2023), The effect of valley confluence and bedrock geology upon the location and depth of glacial overdeepenings, Geografiska Annaler: Series A, Physical Geography, 105(2-3), 65–90, https://doi.org/10.108 0/04353676.2023.2217047.

Lundin, E., and A. G. Doré (2002), Mid-Cenozoic post-breakup deformation in the ‘passive’ margins bordering the Norwegian–Greenland Sea, Marine and Petroleum Geology, 19(1), 79–93, https://doi.org/10.1016/s0264-8172(01)00046-0.

Lundin, E. R., and A. G. Doré (1997), A tectonic model for the Norwegian passive margin with implications for the NE Atlantic: Early Cretaceous to break-up, Journal of the Geological Society, 154(3), 545–550, https://doi.org/10.1144/gsjgs.154.3.0545.

Makushkina, A., B. Tauzin, M. S. Miller, H. Tkalčić, and H. Thybo (2025), Opening of the North Atlantic Ocean and the rise of Scandinavian mountains, Geology, 53(1), 8–12, https://doi.org/10.1130/g52735.1.

Mangerud, J. (2025), Hvor mange istider har vi hatt i Norge?, Naturen, 149(4), 188–192, https://doi.org/10.18261/naturen.1 49.4.5.

Mangerud, J., R. Gyllencreutz, O. Lohne, and J. I. Svendsen (2011), Glacial history of Norway, in Developments in Quaternary Sciences, Developments in Quaternary Science, vol. 149, pp. 279–298, Elsevier, https://doi.org/10.1016/b978-0-444-53447-7.00022-2.

Marr, P., S. Winkler, and J. Löffler (2018), Investigations on blockfields and related landforms at Blåhø (Southern Norway) using Schmidt-hammer exposure-age dating: palaeoclimatic and morphodynamic implications, Geografiska Annaler: Series A, Physical Geography, 100(3), 285–306, https://doi.org/10.1080/04353676.2018.1474350.

Medvedev, S., and E. H. Hartz (2015), Evolution of topography of post-Devonian Scandinavia: Effects and rates of erosion,

Geomorphology (Amsterdam, Netherlands), 231, 229–245, https://doi.org/10.1016/j.geomorph.2014.12.010.

Miller, K. G., M. A. Kominz, J. V. Browning, J. D. Wright, G. S. Mountain, M. E. Katz, P. J. Sugarman, B. S. Cramer, N. Christie-Blick, and S. F. Pekar (2005), The Phanerozoic record of global sea-level change, Science (New York, N.Y.), 310(5752), 1293–1298, https://doi.org/10.1126/science.1116412.

Nielsen, S. B., K. Gallagher, C. Leighton, N. Balling, L. Svenningsen, B. H. Jacobsen, E. Thomsen, O. B. Nielsen, C. Heilmann-Clausen, D. L. Egholm, M. A. Summerfield, O. R. Clausen, J. A. Piotrowski, M. R. Thorsen, M. Huuse, N. Abrahamsen, C. King, and H. Lykke-Andersen (2009), The evolution of western Scandinavian topography: A review of Neogene uplift versus the ICE (isostasy–climate–erosion) hypothesis, Journal of Geodynamics, 47 (2-3), 72–95, https://doi.org/10.1016/j.jog.2008.09.001.

Olesen, O., J. Dehls, J. Ebbing, H. Henriksen, O. Kihle, and E. Lundin (2007), Aeromagnetic mapping of deep-weathered fracture zones in the Oslo Region - a new tool for improved planning of tunnels, Norwegian Journal of Geology, 87 (1-2), 253–267.

Olesen, O., H. G. Rueslåtten, J. Schönenberger, M. Smelror, R. van der Lelij, B. E. Larsen, L. Olsen, V. Baranwal, A. Bjørlykke,

M. Brönner, J. Gellein, and J. S. Rønning (2023), Jurassic heritance of the geomorphology in Mid Norway, Norwegian Journal of Geology, 103, https://doi.org/10.17850/njg103-3-2.

Olivarius, M., E. S. Rasmussen, V. Siersma, C. Knudsen, T. F. Kokfelt, and N. Keulen (2014), Provenance signal variations caused by facies and tectonics: Zircon age and heavy mineral evidence from Miocene sand in the north-eastern North Sea Basin, Marine and Petroleum Geology, 49, 1–14, https://doi.org/10.1016/j.marpetgeo.2013.09.010.

Ollier, C. D., and C. F. Pain (1997), Equating the basal unconformity with the palaeoplain: a model for passive margins, Geomorphology (Amsterdam, Netherlands), 19(1-2), 1–15, https://doi.org/10.1016/s0169-555x(96)00048-7.

Ottesen, S., B. Selvikvåg, A. S. J. Scott, R. Meneguolo, A. Cullum, A. Amilibia-Cabeza, M. Vigorito, A. Helsem, and O. J. Martinsen (2022), Geology of the Johan Sverdrup field: A giant oil discovery and development project in a mature Norwegian North Sea basin, AAPG Bulletin, 106(4), 897–936, https://doi.org/10.1306/11042120037.

Paxman, G. J. G., J. Austermann, and K. J. Tinto (2021), A fault-bounded palaeo-lake basin preserved beneath the Greenland Ice Sheet, Earth and Planetary Science Letters, 553(116647), 116,647, https://doi.org/10.1016/j.epsl.2020.116647.

Paxman, G. J. G., S. S. R. Jamieson, A. M. Dolan, and M. J. Bentley (2024), Subglacial valleys preserved in the highlands of south and east Greenland record restricted ice extent during past warmer climates, The Cryosphere, 18(3), 1467–1493, https://doi.org/10.5194/tc-18-1467-2024.

Pedersen, V. K., R. S. Huismans, and R. Moucha (2016), Isostatic and dynamic support of high topography on a North Atlantic passive margin, Earth and Planetary Science Letters, 446, 1–9, https://doi.org/10.1016/j.epsl.2016.04.019.

Peron-Pinvidic, G., J. R. Hopper, M. Stoker, C. Gaina, J. C. Doornenbal, and U. E. Árting (2017), About this title - The NE Atlantic Region: A Reappraisal of Crustal Structure, Tectonostratigraphy and Magmatic Evolution, Geological Society Special Publication, 447 (1), NP–NP, https://doi.org/10.1144/sp447.

Pfiffner, O. A. (2005), EUROPE | The Alps, in Encyclopedia of Geology, pp. 125–135, Elsevier, https://doi.org/10.1016/b0-1 2-369396-9/00442-1.

Poore, H. R., N. White, and S. Jones (2009), A Neogene chronology of Iceland plume activity from V-shaped ridges, Earth and Planetary Science Letters, 283(1-4), 1–13, https://doi.org/10.1016/j.epsl.2009.02.028.

Rasmussen, E. S. (2014), Development of an incised-valley fill under the influence of tectonism and glacio-eustatic sea-level change: Valley morphology, fluvial style, and lithology, Journal of Sedimentary Research, 84(4), 278–300, https://doi.org/10.2110/jsr.2014.24.

Rasmussen, E. S., and K. Dybkjær (2020), The lower Miocene flint conglomerate, Jylland, Denmark: a result of the Savian tectonic phase, GEUS Bulletin, 44, 4618., https://doi.org/10.34194/geusb.v44.4618.

Rasmussen, E. S., K. Dybkjær, and S. Piasecki (2010), Lithostratigraphy of the Upper Oligocene – Miocene succession of Denmark, Geological Survey of Denmark and Greenland Bulletin, 22, 1–92, https://doi.org/10.34194/geusb.v22.4733.

Redfield, T. F., and P. T. Osmundsen (2013), The long-term topographic response of a continent adjacent to a hyperextended margin: A case study from Scandinavia, Geological Society of America Bulletin, 125(1-2), 184–200, https://doi.org/10.1130/ b30691.1.

Redfield, T. F., T. H. Torsvik, P. A. M. Andriessen, and R. H. Gabrielsen (2004), Mesozoic and Cenozoic tectonics of the Møre Trøndelag Fault Complex, central Norway: constraints from new apatite fission track data, Physics and Chemistry of the Earth (2002), 29(10), 673–682, https://doi.org/10.1016/j.pce.2004.03.005.

Redfield, T. F., P. T. Osmundsen, and B. W. H. Hendriks (2005a), The role of fault reactivation and growth in the uplift of western Fennoscandia, Journal of the Geological Society, 162(6), 1013–1030, https://doi.org/10.1144/0016-764904-149.

Redfield, T. F., A. Braathen, R. H. Gabrielsen, P. T. Osmundsen, T. H. Torsvik, and P. A. M. Andriessen (2005b), Late Mesozoic to Early Cenozoic components of vertical separation across the Møre–Trøndelag Fault complex, Norway, Tectonophysics, 395(3-4), 233–249, https://doi.org/10.1016/j.tecto.2004.09.012.

Reusch, H. (1901), Nogle bidrag til forstaaelsen af, hvorledes Norges dale og fjelde er blevne til, Norges geologiske undersøkelse, 32(Aarbog 1900), 124–263.

Reusch, H. (1905), En ejendommelighet ved Skandinaviens hovedvannskille, Norsk geografisk tidsskrift. Norwegian journal of geography, 1, 1–15.

Riber, L., H. Dypvik, and R. Sørlie (2015), Altered basement rocks on the Utsira High and its surroundings, Norwegian North Sea, Norwegian Journal of Geology, 95(1), 57–89, https://doi.org/10.17850/njg95-1-04.

Riber, L., H. Dypvik, R. Sørlie, and R. E. Ferrell, Jr (2016), Clay minerals in deeply buried paleoregolith profiles, Norwegian North Sea, Clays and Clay Minerals, 64(5), 588–607, https://doi.org/10.1346/ccmn.2016.064036.

Rickers, F., A. Fichtner, and J. Trampert (2013), The Iceland–Jan Mayen plume system and its impact on mantle dynamics in the North Atlantic region: Evidence from full-waveform inversion, Earth and Planetary Science Letters, 367, 39–51, https://doi.org/10.1016/j.epsl.2013.02.022.

Riis, F. (1996), Quantification of Cenozoic vertical movements of Scandinavia by correlation of morphological surfaces with offshore data, Global and Planetary Change, 12(1-4), 331–357, https://doi.org/10.1016/0921-8181(95)00027-5.

Ritter, D. F., R. C. Kochel, and J. R. Miller (2001), Process geomorphology, 4 ed., Brown (William C.), Dubuque, IA.

Roaldset, E., E. Pettersen, O. Longva, J. Mangerud, and Roaldset (1982), Remnants of preglacial weathering in western Norway, Norsk geologisk tidsskrift, 62(3), 169–178.

Rohrman, M., P. van der Beek, P. Andriessen, and S. Cloetingh (1995), Meso-Cenozoic morphotectonic evolution of southern Norway: Neogene domal uplift inferred from apatite fission track thermochronology, Tectonics, 14(3), 704–718, https://doi. org/10.1029/95tc00088.

Rudberg, S. (1988), Gross morphology of fennoskandia—six complementary ways of explanation, Geografiska Annaler: Series A, Physical Geography, 70(3), 135–167, https://doi.org/10.1080/04353676.1988.11880244.

Schipull, K. (1974), Geomorphologische Studien im zentralen Südnorwegen mit Beiträgen über Regelungs- und Steuerungssysteme in der Geomorphologie, Hamburger Geographische Studien, 31, 79–79.

Schoonman, C. M., N. J. White, and D. Pritchard (2017), Radial viscous fingering of hot asthenosphere within the Icelandic plume beneath the North Atlantic Ocean, Earth and Planetary Science Letters, 468, 51–61, https://doi.org/10.1016/j.epsl.2 017.03.036.

Sigmond, E. M. O. (2002), Geological map of land and sea areas of Northern Europe scale 1:4 million.

Stoker, M. S., D. Praeg, B. O. Hjelstuen, J. S. Laberg, T. Nielsen, and P. M. Shannon (2005), Neogene stratigraphy and the sedimentary and oceanographic development of the NW European Atlantic margin, Marine and Petroleum Geology, 22(9-10), 977–1005, https://doi.org/10.1016/j.marpetgeo.2004.11.007.

Stroeven, A. P., D. Fabel, J. Harbor, C. Hättestrand, and J. Kleman (2002), Quantifying the erosional impact of the fennoscandian ice sheet in the torneträsk–narvik corridor, northern sweden, based on cosmogenic radionuclide data, Geografiska Annaler: Series A, Physical Geography, 84(3-4), 275–287, https://doi.org/10.1111/j.0435-3676.2002.00182.x.

Sugden, D. E., and S. S. R. Jamieson (2018), The pre-glacial landscape of Antarctica, Scottish Geographical Journal, 134(3-4), 203–223, https://doi.org/10.1080/14702541.2018.1535090.

Sømme, T. O., and C. A.-L. Jackson (2013), Source-to-sink analysis of ancient sedimentary systems using a subsurface case study from the Møre-Trøndelag area of southern Norway: Part 2 – sediment dispersal and forcing mechanisms, Basin Research, 25(5), 512–531, https://doi.org/10.1111/bre.12014.

Sømme, T. O., W. Helland-Hansen, and O. J. Martinsen (2013), Quantitative aspects of stratigraphic onshore-offshore relationships along the western margin of southern Norway: implications for Late Mesozoic and Cenozoic topographic evolution, Norsk geologisk tidsskrift, 93(3-4), 261–276.

Sømme, T. O., J. Skogseid, P. Embry, and H. Løseth (2019), Manifestation of tectonic and climatic perturbations in deep-time stratigraphy – an example from the Paleocene succession offshore western Norway, Frontiers in Earth Science, 7, 303, https://doi.org/10.3389/feart.2019.00303.

Sørensen, R. (1988), In-situ rock weathering in Vestfold, southeastern Norway, Geografiska Annaler: Series A, Physical Geography, 70(4), 299–308, https://doi.org/10.1080/04353676.1988.11880260.

Thomas, M. F. (1995), Models for landform development on passive margins. Some implications for relief development in glaciated areas, Geomorphology (Amsterdam, Netherlands), 12(1), 3–15, https://doi.org/10.1016/0169-555x(94)00082-3.

Thoresen, M. K. (1991), Kvartærgeologisk kart over Norge, tema jordarter.

Underhill, J. R., and M. A. Partington (1993), Jurassic thermal doming and deflation in the North Sea: implications of the sequence stratigraphic evidence, in Petroleum Geology of Northwest Europe: Proceedings of the 4th Conference, Geological Society London Petroleum Geology Conference Series, vol. 4, edited by J. R. Parker, pp. 337–345, Geological Society of London, London, https://doi.org/10.1144/0040337.

van Hinsbergen, D. J. J., P. C. Lippert, G. Dupont-Nivet, N. McQuarrie, P. V. Doubrovine, W. Spakman, and T. H. Torsvik (2012), Greater India Basin hypothesis and a two-stage Cenozoic collision between India and Asia, Proceedings of the National Academy of Sciences of the United States of America, 109(20), 7659–7664, https://doi.org/10.1073/pnas.1117262109.

Veevers, J. J. (2013), Pangea: Geochronological correlation of successive environmental and strati-tectonic phases in Europe and Australia, Earth-Science Reviews, 127, 48–95, https://doi.org/10.1016/j.earscirev.2013.09.001.

Watts, A. B. (2001), Isostacy and Flexure of the Lithosphere, 458 pp., Cambridge University Press, Cambridge.

Watts, L. M., R. E. Holdsworth, D. Roberts, J. M. Sleight, and R. J. Walker (2023), Structural evolution of the reactivated Møre–Trøndelag Fault Complex, Fosen Peninsula, Norway, Journal of the Geological Society, 180(3), jgs2022–139, https://doi.org/10.1144/jgs2022-139.

Weisz, G. (1992), An investigation of Jurassic coals from Haltenbanken and Beitstadfjorden. A comparison of composition and maturity, Ph.D. thesis, University of Trondheim, Trondheim, Norway.

White, N., and D. McKenzie (1988), Formation of the “steer’s head” geometry of sedimentary basins by differential stretching of the crust and mantle, Geology, 16(3), 250, https://doi.org/10.1130/0091-7613(1988)016<0250:fotssh>2.3.co;2.

Wiest, J. D., J. Jacobs, H. Fossen, M. Ganerød, and P. T. Osmundsen (2021), Segmentation of the Caledonian orogenic infrastructure and exhumation of the Western Gneiss Region during transtensional collapse, Journal of the Geological Society, 178(3), jgs2020–199, https://doi.org/10.1144/jgs2020-199.

Wråk, W. (1908), Bidrag til Skandinaviens reliefkronologi, Ymer, p. 149 – 191.

Śliwińska, K. K., T. Denk, K. Dybkjær, J. M. Fredborg, S. Lindström, S. Piasecki, and E. S. Rasmussen (2024), Miocene vegetation and climate in the eastern North Sea Basin, onshore Denmark, compared to the present, GEUS Bulletin, 57, https://doi.org/10.34194/geusb.v57.8365.