Kristensen, T. B., Clausen, O. R., Piotrowski, J. & Huuse, M. (2005).
3D seismic morphology of buried Quaternary Valleys - evidence for sub glacial origin. I R. Davies, H. Posamentier, J. Cartwrigth, L. Wood, V. Sare & P. Heino (red.),
Ikke angivet The Geological Society of London and SEPM.
Kristensen, T. B., Piotrowski, J., Huuse, M.
, Clausen, O. R. & Hamberg, L. (2008).
Time-transgressive tunnel valley formation indicated by infill sediment structure, North Sea - the role of glaciohydraulic supercooling.
Earth Surface Processes and Landforms,
33(4), 546-559.
http://www3.interscience.wiley.com/cgi-bin/fulltext/117943383/PDFSTART
Kind, R., Sodoudi, F., Yuan, X., Shomali, H., Roberts, R., Gee, D., Eken, T., Bianchi, M., Tilmann, F.
, Balling, N., Jacobsen, B. H., Kumar, P. & Geissler, W. H. (2013).
Scandinavia: A former Tibet? Geochemistry, Geophysics, Geosystems,
14(10), 4479-4487.
https://doi.org/10.1002/ggge.20251
Hejrani, B., Jacobsen, B. H., Balling, N., Tilmann, F. & Kind, R. (2013).
Upper-mantle velocity structure beneath Jutland, Denmark and northern Germany: Preliminary results. Abstract fra Knowledge for the future, Gøteborg, Sverige.
http://iahs-iapso-iaspei2013.com/Abstracts.aspx?252000
Hansen, J. P. V.
, Clausen, O. R. & Huuse, M. (2004).
3D Seismic analysis reveals the origin of ambigous erosional features at a major sequence boundary in the Eastern North Sea: near top Oligocene: In: (Eds) Davies, R.J., Cartwrigth, J.A., Stewart, S.A. Lappin, M. Underhill, J.R.: 3D Seismic Technology: Application to the Exploration of Sedimentary Basins.
Geological Society Memoir, (29), 83-91.
Gołedowski, B.
, Egholm, D. L., Nielsen, S. B., Clausen, O. R. & McGregor, E. D. (2013).
Cenozoic erosion and flexural isostasy of Scandinavia.
Journal of Geodynamics,
70, 49-57.
https://doi.org/10.1016/j.jog.2013.05.004
Glad, A. C., Amour, F., Welch, M. J.
, Clausen, O. R. & Nick, H. M. (2020).
A naturally fractured chalk reservoir in the danian ekofisk formation: Characteristics, petrography and stable isotope signature of cemented fractures and faults (the Kraka Field, Danish North Sea).
Norsk Geologisk Tidsskrift,
100(2), 1-17. Artikel 202008.
https://doi.org/10.17850/njg100-2-4
Glad, A. C., Amour, F., Welch, M. J.
, Clausen, O. R., Anderskouv, K., Ineson, J. R., Sheldon, E. & Nick, H. M. (2022).
Natural fractures and discontinuities in a Lower Cretaceous chalk-marlstone reservoir, Valdemar Field, Danish North Sea.
Marine and Petroleum Geology,
136, Artikel 105445.
https://doi.org/10.1016/j.marpetgeo.2021.105445
Glad, A. C., Welch, M. J., Amour, F., Nick, H.
& Clausen, O. R. (2021).
NATURAL FRACTURES AND SEDIMENTOLOGY OF A HETEROGENEOUS RESERVOIR: THE VALDEMAR FIELD, DANISH NORTH SEA. I
82nd EAGE Conference and Exhibition 2021 (s. 1132-1136). European Association of Geoscientists and Engineers, EAGE.
Glad, A. C.
, Afrough, A., Amour, F., Ferreira, C. A. S., Price, N.
, Clausen, O. R. & Nick, H. M. (2023).
Anatomy of fractures: Quantifying fracture geometry utilizing X-ray computed tomography in a chalk-marl reservoir; the Lower Cretaceous Valdemar Field (Danish Central Graben).
Journal of Structural Geology,
174, Artikel 104936.
https://doi.org/10.1016/j.jsg.2023.104936
Glad, A. C., Orlander, T., Fabricius, I. L.
, Clausen, O. R. & Clemmensen, L. B. (2024).
Characteristics and formation of natural fractures in a silica-rich chalk, Coniacian Arnager Limestone Formation, Bornholm, Denmark.
Bulletin of the Geological Society of Denmark,
73, 157-173.
https://doi.org/10.37570/bgsd-2024-73-09
Glad, A. C., Welsh, M. J., Oldfield, S. J., Nick, H. M., Jørgensen, T. M.
& Clausen, O. R. (2023).
Geomechanical Modelling the Evolution of a Connected Natural Fracture Network to Explain Fluid Flow Variations Across a Fractured Chalk-Marl Reservoir. I
Geomechanical Controls on Fracture Development in Chalk and Marl in the Danish North Sea (s. 215-243)
https://doi.org/10.1007/978-3-031-35327-7_8
Glad, A. C., Welsh, M. J., Oldfield, S. J., Nick, H. M., Jørgensen, T. M.
& Clausen, O. R. (2025).
Geomechanische Modellierung der Evolution eines verbundenen natürlichen Rissnetzwerks zur Erklärung von Flüssigkeitsflussvariationen in einem gebrochenen Kreide-Mergel-Reservoir. I
Geomechanische Kontrollen der Rissentwicklung in Kreide und Mergel in der dänischen Nordsee: Verstehen und Vorhersagen von Riss-Systemen (s. 239-270). Springer Nature.
https://doi.org/10.1007/978-3-031-81345-0_8