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Dynamic modelling of a UK North Sea saline formation for CO2 sequestration

Francesca E. Watson, Simon A. Mathias, Susie E. Daniels, Richard R. Jones, Richard J. Davies, Ben J. Hedley and Jeroen van Hunen
Petroleum Geoscience, 20, 169-185, 25 February 2014, https://doi.org/10.1144/petgeo2012-072
Francesca E. Watson
1Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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Simon A. Mathias
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Susie E. Daniels
1Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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Richard R. Jones
1Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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Richard J. Davies
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Ben J. Hedley
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Jeroen van Hunen
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Abstract

Preliminary dynamic modelling, using TOUGH2/ECO2N, has been carried out to assess the suitability of a site in the UK North Sea for sequestering CO2. The potential storage site is a previously unused saline formation within the Permian Rotliegend sandstone. Data regarding the site are limited. Therefore, additional input parameters for the model have been taken from the literature and nearby analogues. The sensitivity of the model to a range of parameters has been tested. Results indicate that the site can sustain an injection rate of around 2.5 Mt a–1 of CO2 for 20 years. The main control on pressure build-up in the model is the permeability of the unit directly beneath the Rotliegend in the location of the proposed storage site. The plume diameter is primarily controlled by the porosity and permeability of the site. A comparison between static, analytical and dynamic modelling highlights the advantages of dynamic modelling for a study such as this. Further data collection and modelling are required to improve predictions of pressure build-up and CO2 migration. Despite uncertainties in the input data, the use of a full three-dimensional (3D) numerical simulation has been extremely useful for identifying and prioritizing factors that need further investigation.

  • © 2014 EAGE/The Geological Society of London
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Petroleum Geoscience: 20 (2)
Petroleum Geoscience
Volume 20, Issue 2
May 2014
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Dynamic modelling of a UK North Sea saline formation for CO2 sequestration

Francesca E. Watson, Simon A. Mathias, Susie E. Daniels, Richard R. Jones, Richard J. Davies, Ben J. Hedley and Jeroen van Hunen
Petroleum Geoscience, 20, 169-185, 25 February 2014, https://doi.org/10.1144/petgeo2012-072
Francesca E. Watson
1Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
  • Find this author on Google Scholar
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  • For correspondence: [email protected]
Simon A. Mathias
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Susie E. Daniels
1Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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Richard R. Jones
1Geospatial Research Ltd, Suites 7 & 8, Harrison House, Hawthorne Terrace, Durham DH1 4EL, UK
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Richard J. Davies
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Ben J. Hedley
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Jeroen van Hunen
2Department of Earth Sciences, Durham University, South Road, Durham DH1 3LE, UK
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Dynamic modelling of a UK North Sea saline formation for CO2 sequestration

Francesca E. Watson, Simon A. Mathias, Susie E. Daniels, Richard R. Jones, Richard J. Davies, Ben J. Hedley and Jeroen van Hunen
Petroleum Geoscience, 20, 169-185, 25 February 2014, https://doi.org/10.1144/petgeo2012-072
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    • Abstract
    • Introduction
    • CO2 Storage in Saline Formations in the UK North Sea
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