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3D characterization of fracture systems using Terrestrial Laser Scanning: an example from the Lewisian basement of NW Scotland

J. C. Pless, K. J. W. McCaffrey, R. R. Jones, R. E. Holdsworth, A. Conway and M. Krabbendam
Geological Society, London, Special Publications, 421, 125-141, 5 August 2015, https://doi.org/10.1144/SP421.14
J. C. Pless
1CeREES, Department of Earth Sciences, Durham University, Durham DHE 3LE, UK
2ConocoPhillips UK Ltd, Rubislaw House, Anderson Drive, Aberdeen AB15 6FZ, UK
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K. J. W. McCaffrey
1CeREES, Department of Earth Sciences, Durham University, Durham DHE 3LE, UK
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  • For correspondence: k.j.w.mccaffrey@durham.ac.uk
R. R. Jones
3Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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R. E. Holdsworth
1CeREES, Department of Earth Sciences, Durham University, Durham DHE 3LE, UK
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A. Conway
2ConocoPhillips UK Ltd, Rubislaw House, Anderson Drive, Aberdeen AB15 6FZ, UK
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M. Krabbendam
4British Geological Survey, West Mains Road, Edinburgh EH9 3LA, UK
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Abstract

Fractured gneiss lithologies form a basement-cored high, the Rona Ridge in the Faroe–Shetland Basin. Basement structures are known to play an important role in the petroleum system for the overlying giant Clair Field. An onshore analogue exposure in the Lewisian Gneiss Complex at Kinlochbervie in NW Scotland provides an example of a hanging-wall damage zone of a large basement-hosted normal fault. In this study, we used remote sensing (2D), outcrop line sample methods (1D) and a virtual outcrop created by terrestrial laser scanning methods (3D) to characterize spatial variations of the fracture systems. Spacing distributions from 1D line samples collected from exposures and pseudo-wells constructed through the virtual outcrop show power-law distributions. The virtual outcrop data enable us to extend the scale-invariant description from 1 to 3 orders of magnitude. We developed a novel box-counting workflow to provide an assessment of 2- and 3D variations in the fracture properties. Fracture density and fractal dimension are elevated whereas the number of intersections is decreased within a 220 m-wide volume adjacent to the fault. We discuss how the methods and results from this study can aid the development of analogue for basement reservoirs in the offshore UK continental shelf.

  • © 2015 The Author(s). Published by The Geological Society of London. All rights reserved
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Geological Society, London, Special Publications: 421 (1)
Geological Society, London, Special Publications
Volume 421
2015
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3D characterization of fracture systems using Terrestrial Laser Scanning: an example from the Lewisian basement of NW Scotland

J. C. Pless, K. J. W. McCaffrey, R. R. Jones, R. E. Holdsworth, A. Conway and M. Krabbendam
Geological Society, London, Special Publications, 421, 125-141, 5 August 2015, https://doi.org/10.1144/SP421.14
J. C. Pless
1CeREES, Department of Earth Sciences, Durham University, Durham DHE 3LE, UK
2ConocoPhillips UK Ltd, Rubislaw House, Anderson Drive, Aberdeen AB15 6FZ, UK
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
K. J. W. McCaffrey
1CeREES, Department of Earth Sciences, Durham University, Durham DHE 3LE, UK
  • Find this author on Google Scholar
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  • Search for this author on this site
  • For correspondence: k.j.w.mccaffrey@durham.ac.uk
R. R. Jones
3Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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R. E. Holdsworth
1CeREES, Department of Earth Sciences, Durham University, Durham DHE 3LE, UK
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A. Conway
2ConocoPhillips UK Ltd, Rubislaw House, Anderson Drive, Aberdeen AB15 6FZ, UK
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M. Krabbendam
4British Geological Survey, West Mains Road, Edinburgh EH9 3LA, UK
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3D characterization of fracture systems using Terrestrial Laser Scanning: an example from the Lewisian basement of NW Scotland

J. C. Pless, K. J. W. McCaffrey, R. R. Jones, R. E. Holdsworth, A. Conway and M. Krabbendam
Geological Society, London, Special Publications, 421, 125-141, 5 August 2015, https://doi.org/10.1144/SP421.14
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