• Title of article

    Integrated fracture prediction using sequence stratigraphy within a carbonate fault damage zone, Texas, USA

  • Author/Authors

    Zahm، نويسنده , , Christopher K. and Zahm، نويسنده , , Laura C. and Bellian، نويسنده , , Jerome A.، نويسنده ,

  • Issue Information
    ماهنامه با شماره پیاپی سال 2010
  • Pages
    12
  • From page
    1363
  • To page
    1374
  • Abstract
    Fracture deformation intensity is heterogeneous as a result of the interplay between the stratigraphic architecture and the degree of faulting. Prediction of the distribution of fractures requires careful consideration of the sequence stratigraphic framework in concert with the structural deformation process. Deformation intensity was found to vary by facies that were divided into distinct mechanical units and characterized within a sequence stratigraphic framework. Deformation was found to be more intensely developed within the transgressive systems tract (TST) versus the highstand systems tract (HST). In the HST, facies observed in the outcrop from this study had less mud, thicker cycles, and higher unconfined strength (average of 57 MPa for non-argillaceous facies). In contrast, the TST cycle sets have a higher argillaceous component and cycles are thinner. The facies have a higher mud content and lower unconfined strength (average of 49 MPa for non-argillaceous facies). The reduction in rock strength is compounded by thinner beds and increased frequency of argillaceous wackestone beds. The TST facies also affect the geometry of secondary faults, creating asperities along the fault plane that cause further deformation. Overall, the integration of facies, rock strength and mud content within a sequence stratigraphic framework provides an improved methodology for prediction of deformation within a carbonate fault damage zone.
  • Keywords
    Sequence stratigraphy , Fault damage zone , HST , TST , Fractures , CARBONATE
  • Journal title
    Journal of Structural Geology
  • Serial Year
    2010
  • Journal title
    Journal of Structural Geology
  • Record number

    2227072