1887
Volume 26 Number 1
  • E-ISSN: 1365-2117

Abstract

Abstract

The movement of magma in sedimentary basins often occurs through an extensive and interconnected complex of sills. Field‐, modelling‐, and seismic reflection‐based studies indicate that the emplacement of shallow‐level sills is commonly accommodated by the formation of forced folds, which may be expressed at the free surface and onlapped by younger strata. If the age of these onlapping strata can be constrained, important insights can be gained into the timing of magma emplacement and associated regional, tectono‐magmatic events. Previous studies have focused on isolated intrusions that are overlain by an individual forced fold formed during a single tectono‐magmatic event. However, the structure and evolution of ‘compound’ folds developed above stacked, interconnected sills, and what they may reveal about polyphase intrusive events has not been investigated. In this study, we use 3D seismic reflection data from the Irish Rockall Basin, offshore western Ireland, to constrain the structural style and emplacement history of a sill complex that contains 82 seismically resolved intrusions. Individual forced folds, <41 km2 in plan view and with mean fold amplitudes of 111 m, are developed above single intrusions. However, where sills are stacked, broader (100–244 km2), larger amplitude (mean of 296 m) compound folds occur following the coalescence of individual folds. Stratigraphic onlap and truncation observed within the folds throughout the Palaeocene‐to‐Middle Eocene succession, indicates that emplacement and forced folding initiated at the end Maastrichtian and lasted for . 15 Ma, before ceasing near the end of the Ypresian. We demonstrate (i) intrusion‐induced forced folds evolve dynamically and can form broad areas of sustained local uplift, and (ii) that the formation of sill complexes within the upper crust may occur over prolonged time periods. This study also highlights the importance of seismic reflection data to understanding the structural style and age relationships between igneous systems.

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2014-01-17
2024-04-20
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References

  1. Abdelmalak, M.M., Mourgues, R., Galland, O. & Bureau, D. (2012) Fracture mode analysis and related surface deformation during dyke intrusion: results from 2D experimental modelling. Earth Planet. Sci. Lett., 359–360, 93–105.
    [Google Scholar]
  2. Archer, S.G., Bergman, S.C., Iliffe, J., Murphy, C.M. & Thornton, M. (2005) Palaeogene igneous rocks reveal new insights into the geodynamic evolution and petroleum potential of the Rockall Trough, NE Atlantic Margin. Bas. Res., 17, 171–201.
    [Google Scholar]
  3. Bell, B. & Butcher, H. (2002) On the emplacement of sill complexes: evidence from the Faroe‐Shetland Basin. In: The North Atlantic Igneous Province: Stratigraphy, Tectonic, Volcanic and Magmatic Processes (Ed. by D. W.Jolley & B.Bell ) Geol. Soc. London Spec. Publ., 197, 307–329.
    [Google Scholar]
  4. Buckley, J.S. & Bailey, R.J. (1975) Geophysical evidence on the nature of the Hebrides Terrace Seamount. Scot. J. Geol., 11, 37–45.
    [Google Scholar]
  5. Bunger, A.P. & Cruden, A.R. (2011) Modeling the growth of laccoliths and large mafic sills: role of magma body forces. J. Geophys. Res., 116, B02203.
    [Google Scholar]
  6. Cartwright, J.A. & Hansen, D. (2006) Magma transport through the crust via interconnected sill complexes. Geology, 34, 929–932.
    [Google Scholar]
  7. Cosgrove, J.W. & Hillier, R.D. (1999) Forced‐fold development within Tertiary sediments of the Alba Field, UKCS: evidence of differential compaction and post‐depositional sandstone remobilization. In: Forced Folds and Fractures (Ed. by J.W.Cosgrove & M.S.Ameen ) Geol. Soc. London Spec. Publ., 169, 61–71.
    [Google Scholar]
  8. Doré, A.G., Lundin, E.R., Jensen, L.N., Birkeland, Ø., Eliassen, P.E. & Fichler, C. (1999) Principal tectonic events in the evolution of the northwest European Atlantic margin. In: Petroleum Geology of Northwest Europe: Proceedings of the 5th Conference (Ed. by A.J.Fleet & S.A.R.Boldy ), pp. 41–61. Geological Society, London.
    [Google Scholar]
  9. Einsele, G., Gieskes, J.M., Curray, J., Moore, D.M., Aguayo, E., Aubry, M.‐P., Fornari, D., Guerrero, J., Kastner, M., Kelts, K., Lyle, M., Matoba, Y., Molina‐Cruz, A., Niemitz, J., Rueda, J., Saunders, A., Schrader, H., Simoneit, B. & Vacquier, V. (1980) Intrusion of basaltic sills into highly porous sediments, and resulting hydrothermal activity. Nature, 283, 441–445.
    [Google Scholar]
  10. Emeleus, C.H. & Bell, B.R. (2005) British Regional Geology: The Palaeogene Volcanic Districts of Scotland. 4th edn, British Geological Survey, Nottingham.
    [Google Scholar]
  11. Fernandes, K. (2011) Irish sills of the North Atlantic Igneous Province: seismic imaging, observations and implications for climate change. Unpublished PhD Thesis, University of Dublin, Trinity College, Dublin.
  12. Francis, E.H. (1982) Magma and sediment‐I. Emplacement mechanism of the late carboniferous tholeiite sills in northern Britain. J. Geol. Soc. London, 139, 1–20.
    [Google Scholar]
  13. Gaffney, E.S., Damjanac, B. & Valentine, G.A. (2007) Localization of volcanic activity: 2. Effects of pre‐existing structure. Earth Planet. Sci. Lett., 263, 323–338.
    [Google Scholar]
  14. Galerne, C., Neumann, E.‐R. & Planke, S. (2008) Emplacement mechanisms of sill complexes: information from the geochemical architecture of the Golden Valley Sill Complex, South Africa. J. Volcanol. Geoth. Res., 177, 425–440.
    [Google Scholar]
  15. Galerne, C.Y., Galland, O., Neumann, E.‐R. & Planke, S. (2011) 3D relationships between sills and their feeders: evidence from the Golden Valley Sill Complex (Karoo Basin) and experimental modelling. J. Volcanol. Geoth. Res., 202, 189–199.
    [Google Scholar]
  16. Galland, O. (2012) Experimental modelling of ground deformation associated with shallow magma intrusions. Earth Planet. Sci. Lett., 317–318, 145–146.
    [Google Scholar]
  17. Galland, O. & Scheibert, J. (2013) Analytical model of surface uplift above axisymmetric flat‐lying magma intrusions: implications for sill emplacement and geodesy. J. Volcanol. Geoth. Res., 253, 114–130.
    [Google Scholar]
  18. Galland, O., Planke, S., Neumann, E.‐R. & Malthe‐Sørenssen, A. (2009) Experimental modelling of shallow magma emplacement: application to saucer‐shaped intrusions. Earth Planet. Sci. Lett., 277, 373–383.
    [Google Scholar]
  19. Goulty, N. & Schofield, N. (2008) Implications of simple flexure theory for the formation of saucer‐shaped sills. J. Struct. Geol., 30, 812–817.
    [Google Scholar]
  20. Gressier, J.B., Mourgues, R., Bodet, L., Matthieu, J.Y., Galland, O. & Cobbold, P.R. (2010) Control of pore fluid pressure on depth of emplacement of magmatic sills: an experimental approach. Tectonophysics, 489, 1–13.
    [Google Scholar]
  21. Hansen, D.M. (2006) The morphology of intrusion‐related vent structures and their implications for constraining the timing of intrusive events along the NE Atlantic margin. J. Geol. Soc. London, 163, 789–800.
    [Google Scholar]
  22. Hansen, D.M. & Cartwright, J.A. (2006a) The three‐dimensional geometry and growth of forced folds above saucer‐shaped igneous sills. J. Struct. Geol., 28, 1520–1535.
    [Google Scholar]
  23. Hansen, D.M. & Cartwright, J.A. (2006b) Saucer‐shaped sill with lobate morphology revealed by 3D seismic data: implications for resolving a shallow‐level sill emplacement mechanism. J. Geol. Soc. London, 163, 509–523.
    [Google Scholar]
  24. Hansen, D.M., Cartwright, J.A. & Thomas, D. (2004) 3D seismic analysis of the geometry of igneous sills and sill junction relationships. In: 3D Seismic Technology: Application to the Exploration of Sedimentary Basins (Ed. by R.J.Davies , J.A.Cartwright , S.A.Stewart , M.Lappin & J.R.Underhill ) Geol. Soc. London Spec. Publ., 29, 199–208.
    [Google Scholar]
  25. Hansen, J.P.V., Cartwright, J.A., Huuse, M. & Clausen, O.R. (2005) 3D seismic expression of fluid migration and mud remobilization on the Gjallar Ridge, offshore mid‐Norway. Basin Res., 17, 123–139.
    [Google Scholar]
  26. Hansen, D.M., Redfern, J., Federici, F., di Biase, D. & Bertozzi, G. (2008) Miocene igneous activity in the Northern Subbasin, offshore Senegal, NW Africa. Mar. Petrol. Geol., 25, 1–15.
    [Google Scholar]
  27. Hansen, J., Jerram, D.A., McCaffrey, K. & Passey, S.R. (2009) The onset of the North Atlantic Igneous Province in a rifting perspective. Geol. Magazine, 146, 309–325.
    [Google Scholar]
  28. Henderson, J., Purves, S.J. & Fisher, G. (2008) Delineation of geological elements from RGB color blending of seismic attribute volumes. Lead. Edge, 27, 342–350.
    [Google Scholar]
  29. Holford, S.P., Schofield, N., Macdonald, J.D., Duddy, I.R. & Green, P.F. (2012) Seismic analysis of igneous systems in sedimentary basins and their implications on hydrocarbon prospectivity: examples from the southern Australian margin. APPEA J., 52, 229–250.
    [Google Scholar]
  30. Holness, M.B. & Humphreys, M.C.S. (2003) The Traigh Bhàn Sgùrra sill, Isle of Mull: flow localization in a major magma conduit. J. Petrol., 44, 1961–1976.
    [Google Scholar]
  31. Hutton, D.H.W. (2009) Insights into magmatism in volcanic margins: bridge structures and a new mechanism of basic sill emplacement‐Theron Mountains, Antarctica. Petrol. Geosci., 15, 269–278.
    [Google Scholar]
  32. Jackson, C.A‐L. (2012) Seismic reflection imaging and controls on the preservation of ancient sill‐fed magmatic vents. J. Geol. Soc. London, 169, 503–506.
    [Google Scholar]
  33. Jackson, C.A‐L., Schofield, N. & Golenkov, B. (2013) Geometry and controls on the development of igneous sill‐related forced folds: a 2D seismic reflection case study from offshore southern Australia. Geol. Soc. Am. Bull.
    [Google Scholar]
  34. Jamtveit, B., Svensen, H., Podladchikov, Y. & Planke, S. (2004) Hydrothermal vent complexes associated with sill intrusions in sedimentary basins, Physical geology of high‐level magmatic systems. Geol. Soc. London Spec. Publ., 234, 233–241.
    [Google Scholar]
  35. Koch, F.G., Johnson, A.M. & Pollard, D.D. (1981) Monoclinal bending of strata over laccolithic intrusions. Tectonophysics, 74, T21–T31.
    [Google Scholar]
  36. Ledevin, M., Ardnt, N., Cooper, M.R., Earls, G., Lyle, P., Aubourg, C. & Lewin, E. (2012) Intrusion history of the Portrush Sill, County Antrim, Northern Ireland: evidence for rapid emplacement and high‐temperature contact metamorphism. Geol. Mag., 149, 67–79.
    [Google Scholar]
  37. Magee, C., Stevenson, C.T.E., O'driscoll, B. & Petronis, M.E. (2012a) An alternative emplacement model for the classic Ardnamurchan cone sheet swarm, NW Scotland, involving lateral magma supply via regional dykes. J. Struct. Geol., 43, 73–91.
    [Google Scholar]
  38. Magee, C., Stevenson, C.T.E., O'driscoll, B. & Petronis, M.E. (2012b) Local and regional controls on the lateral emplacement of the Ben Hiant Dolerite intrusion, Ardnamurchan (NW Scotland). J. Struct. Geol., 39, 68–82.
    [Google Scholar]
  39. Magee, C., Hunt‐Stewart, E. & Jackson, C.A‐L. (2013) Volcano growth mechanisms and the role of sub‐volcanic intrusions: insights from 2D seismic reflection data. Earth Planet. Sci. Lett., 373, 41–53.
    [Google Scholar]
  40. Magee, C., Briggs, F. & Jackson, C.A‐L. (in press) Lithological controls on igneous intrusion induced ground deformation. J. Geol. Soc. London.
    [Google Scholar]
  41. Malthe‐Sørenssen, A., Planke, S., Svensen, H. & Jamtveit, B., 2004. Formation of saucer‐shaped sills. In: Physical Geology of Highlevel Magmatic Systems (Ed. by C.Breitkreuz & N.Petford ), Geol. Soc. London Spec. Publ.., 234, 215–227.
    [Google Scholar]
  42. Miles, A.J. & Cartwright, J.A. (2010) Hybrid flow sills: a new mode of igneous sheet intrusion. Geology, 38, 343–346.
    [Google Scholar]
  43. Morewood, N.C., Shannon, P.M. & Mackenzie, G.D. (2004) Seismic stratigraphy of the southern Rockall Basin: a comparison between wide‐angle seismic and normal incidence reflection data. Mar. Petrol. Geol., 21, 1149–1163.
    [Google Scholar]
  44. Muirhead, J.D., Airoldi, G., Rowland, J.V. & White, J.D.L. (2012) Interconnected sills and inclined sheet intrusions control shallow magma transport in the Ferrar large igneous province, Antarctica. Geol. Soc. Am. Bull., 124, 162–180.
    [Google Scholar]
  45. Naylor, D. & Shannon, P.M. (2005) The structural framework of the Irish Atlantic Margin. In: Petroleum Geology: N.W. Europe and Global Perspectives (Ed. by A.G.Doré & B.Vining ), Proceedings of the 6th Petroleum Geology Conference, Geological Society, London, 1009–1021.
    [Google Scholar]
  46. Passey, S.R. & Jolley, D.W. (2009) A revised lithostratigraphic nomenclature for the Palaeogene Faroe Islands Basalt Group, NE Atlantic Ocean. Earth Env. Sci. Trans. Royal Soc. Edinburgh., 99, 127–158.
    [Google Scholar]
  47. Planke, S., Rasmussen, T., Rey, S.S. & Myklebust, R. (2005) Seismic characteristics and distribution of volcanic intrusions and hydrothermal vent complexes in the Vøring and Møre Basins. In Petroleum geology: N.W. Europe and Global Perspectives (Ed. by A.G.Doré & B.Vining ) Proceedings of the 6th Petroleum Geology Conference, Geological Society, London, 833–844.
    [Google Scholar]
  48. Pollard, D.D. & Johnson, A.M. (1973) Mechanics of growth of some laccolithic intrusions in the Henry Mountains, Utah, II: bending and failure of overburden layers and sill formation. Tectonophysics, 18, 311–354.
    [Google Scholar]
  49. Pollard, D.D., Muller, O.H. & Dockstader, D.R. (1975) The form and growth of fingered sheet intrusions. Geol. Soc. Am. Bull., 86, 351–363.
    [Google Scholar]
  50. Polteau, S., Ferre, E.C., Planke, S., Neumann, E.R. & Chevallier, L. (2008) How are saucer‐shaped sills emplaced? Constraints from the Golden Valley Sill, South Africa. J. Geophys. Res., 113, B12104.
    [Google Scholar]
  51. Polteau, S., Mazzini, A., Galland, O., Planke, S. & Malthe‐Sørenssen, A. (2007) Saucer‐shaped intrusions: occurrences, emplacement and implications. Earth Plan. Sci. Lett., 266, 195–204.
    [Google Scholar]
  52. Rampino, M.R. (2013) Peraluminous igneous rocks as an indicator of thermogenic methane release from the North Atlantic Volcanic Province at the time of the Paleocene‐Eocene Thermal Maximum (PETM). Bull. Volcanol., 75, 678.
    [Google Scholar]
  53. Reeckman, S.A. & Mebberson, A.J. (1984) Igneous intrusions in the North‐West Canning Basin and their impact on oil exploration. In: The Canning Basin, WA (Ed. by P.G.Purcell ) GSA/PESA Canning Basin Symposium, Perth, 389–399.
    [Google Scholar]
  54. Rickwood, P.C. (1990) The anatomy of a dyke and the determination of propagation and magma flow directions. In: Mafic Dykes and Emplacement Mechanisms (Ed. by A.J.Parker , P.C.Rickwood , D.H.Tucker ), pp. 81–100. Balkeme, Rotterdam.
    [Google Scholar]
  55. Rohrman, M. (2007) Prospectivity of volcanic basins: trap delineation and acreage de‐risking. AAPG Bull., 91, 915–939.
    [Google Scholar]
  56. Schofield, N. & Jolley, D.W. (2013) Development of intra‐basaltic lava field drainage systems within the Faroe‐Shetland Basin. Petrol. Geosci., 19, 273–288.
    [Google Scholar]
  57. Schofield, A. & Totterdell, J. (2008) Distribution, Timing and Origin of Magmatism in the Bight and Eucla Basins. Geoscience Australia, Canberra, Record 2008/24. 19 pp.
    [Google Scholar]
  58. Schofield, N., Stevenson, C. & Reston, T. (2010) Magma fingers and host rock fluidization in the emplacement of sills. Geology, 38, 63–66.
    [Google Scholar]
  59. Schofield, N., Heaton, L., Holford, S.P., Archer, S.G., Jackson, C.A‐L. & Jolley, D.W. (2012a) Seismic imaging of ‘broken bridges’: linking seismic to outcrop‐scale investigations of intrusive magma lobes. J. Geol. Soc. London, 169, 421–426.
    [Google Scholar]
  60. Schofield, N.J., Brown, D.J., Magee, C. & Stevenson, C.T. (2012b) Sill morphology and comparison of brittle and non‐brittle emplacement mechanisms. J. Geol. Soc. London, 169, 127–141.
    [Google Scholar]
  61. Schutter, S.R. (2003) Hydrocarbon occurrence and exploration in and around igneous rocks. In Hydrocarbons in Crystalline Rocks (Ed. by N.Petford & K.J.W.McCaffrey ) Geol. Soc. London Spec. Publ., 214, 7–33.
    [Google Scholar]
  62. Skogseid, J., Pedersen, T., Eldholm, O. & Larsen, B.T. (1992) Tectonism and magmatism during NE Atlantic continental break‐up: the Vøring Margin. In Magmatism and the Causes of Continental Break‐Up (Ed. by B.C.Storey , T.Alabaster & R.J.Pankhurst ) Geol. Soc. London Spec. Publ., 68, 305–320.
    [Google Scholar]
  63. Smallwood, J.R. & Maresh, J. (2002) The properties, morphology and distribution of igneous sills: modelling, borehole data and 3D seismic from the Faroe‐Shetland area. In The North Atlantic Igneous Province: Stratigraphy, Tectonic, Volcanic and Magmatic Processes (Ed. by D.W.Jolley & B.Bell ) Geol. Soc. London Spec. Publ., 197, 271–306.
    [Google Scholar]
  64. Stevenson, C.T.E., Owens, W.H. & Hutton, D.H.W. (2007) Flow lobes in granite: The determination of magma flow direction in the Trawenagh Bay Granite, northwestern Ireland, using anisotropy of magnetic susceptibility. Geol. Soc. Am. Bull., 119, 1368–1386.
    [Google Scholar]
  65. Storey, M., Duncan, R.A. & Tegner, C. (2007) Timing and duration of volcanism I the North Atlantic Igneous Province: implications for geodynamics and links to the Iceland hotspot. Chem. Geol., 241, 264–281.
    [Google Scholar]
  66. Svensen, H., Planke, S., Malthe‐Sørenssen, A., Jamtviet, B., Myklebust, R., Eidem, T. & Rey, S.S. (2004) Release of methane from a volcanic basin as a mechanism for initial Eocene global warming. Nature, 429, 542–545.
    [Google Scholar]
  67. Svensen, H., Jamtviet, B., Planke, S. & Chevallier, L. (2006) Structure and evolution of hydrothermal vent complexes in the Karoo Basin, South Africa. J. Geol. Soc. London, 163, 671–682.
    [Google Scholar]
  68. Svensen, H., Corfu, F., Polteau, S., Hammer, Ø. & Planke, S. (2012) Rapid emplacement in the Karoo Large Igneous Province. Earth Planet. Sci. Lett., 325–326, 1–9.
    [Google Scholar]
  69. Symonds, P.A., Planke, S., Fey, O. & Skogseid, J. (1998) Volcanic evolution of the western Australian continental margin and its implications for basin development. In: The Sedimentary Basins of Western Australia 2: Proceedings of Petroleum Exploration Society of Australia Symposium (Ed. by P. G.Purcell & R.R.Purcell ), pp. 33–54. Geoscience, Australia, Perth.
    [Google Scholar]
  70. Thompson, K. (2007) Determining magma flow in sills, dykes and laccoliths and their implications for sill emplacement mechanisms. Bull. Volcanol., 70, 183–201.
    [Google Scholar]
  71. Thomson, K. & Hutton, D. (2004) Geometry and growth of sill complexes: insights using 3D seismic from the North Rockall Trough. Bull. Volcanol., 66, 364–375.
    [Google Scholar]
  72. Thomson, K. & Schofield, N. (2008) Lithological and structural controls on the emplacement and morphology of sills in sedimentary basins. In Structure and Emplacement of High‐Level Magmatic Systems (Ed. by K.Thomson & N.Petford ) Geol. Soc. London Spec. Publ., 302, 31–44.
    [Google Scholar]
  73. Trude, K.J. (2004a) The mechanics of igneous sill intrusion in sedimentary basins from three‐dimensional seismic data. Unpublished PhD Thesis, University of Cardiff, Cardiff.
    [Google Scholar]
  74. Trude, K.J. (2004b) Kinematic indicators for shallow level igneous intrusions from 3D seismic data: evidence of flow direction and feeder location. In 3D Seismic Technology: Application to the Exploration of Sedimentary Basins (Ed. by R.J.Davies , J.A.Cartwright , S.A.Stewart , M.Lappin & J.R.Underhill ) Geol. Soc. London Spec. Publ., 29, 209–217.
    [Google Scholar]
  75. Trude, J., Cartwright, J.A., Davies, R.J. & Smallwood, J. (2003) New technique for dating igneous sills. Geology, 31, 813–816.
    [Google Scholar]
  76. Tyrrell, S., Souders, A.K., Haughton, P.D.W., Daly, J.S. & Shannon, P.M. (2010) Sedimentology, sandstone provenance and palaeodrainage on the eastern Rockall Basin margin: evidence from the Pb isotopic composition of detrital K‐feldspar. In: Petroleum Geology: From Mature Basins to New Frontiers – Proceedings of the 7th Petroleum Geology Conference (Ed. by B.A.Vining & S.C.Pickering ), pp. 937–952. The Geological Society, London.
    [Google Scholar]
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