TY - JOUR
T1 - Investigation of fractured carbonate reservoirs by applying shear-wave splitting concept
AU - Diaz-Acosta, Alejandro
AU - Bouchaala, Fateh
AU - Kishida, Tadahiro
AU - Jouini, Mohamed S.
AU - Ali, Mohammed Y.
N1 - Funding Information:
We are grateful for the excellent research collaboration between Khalifa University of Science and Technology and ADNOC and its operating companies, for providing access to the necessary material and data.
Publisher Copyright:
© The Author(s) 2022.
PY - 2023/2
Y1 - 2023/2
N2 - In this study, fracture orientations in carbonate reservoirs were determined using a multicomponent velocity analysis based on shear wave splitting. The analysis is based on the estimated velocities of large seismic events with different polarizations. In a fractured zone with a dominant orientation, weak amplitude split shear events, including shear noise, result in shear waves that are polarized toward the symmetry and anisotropy axes and propagate with a common fast and slow velocity, respectively. Thus, a velocity stack should show high coherency anomalies in directions parallel and orthogonal to the fracture strike. Furthermore, because the analysis is applied locally at a specific depth range, it is less susceptible to the effects of overburden anisotropy and noise. The dominant fracture orientations from carbonate reservoirs of four oilfields were compared to those interpreted from fullbore microimager and core data. Fractures in two offshore reservoirs strike NNE-SSW and NW-SE, which are related to Zagros stress. Fractures in two onshore reservoir strikes NE-SW, while in deeper onshore reservoir fractures are aligned with N-S direction. The findings of this study are promising, particularly for the fractured reservoirs especially those located in Abu Dhabi, which are characterized by high heterogeneity and complex fracture network related to complex tectonic history. In order to obtain geometrical parameters of fractures at seismic scale, it is recommended to implement the analysis adapted in this study after acquiring three component zero-offset vertical seismic profiling.
AB - In this study, fracture orientations in carbonate reservoirs were determined using a multicomponent velocity analysis based on shear wave splitting. The analysis is based on the estimated velocities of large seismic events with different polarizations. In a fractured zone with a dominant orientation, weak amplitude split shear events, including shear noise, result in shear waves that are polarized toward the symmetry and anisotropy axes and propagate with a common fast and slow velocity, respectively. Thus, a velocity stack should show high coherency anomalies in directions parallel and orthogonal to the fracture strike. Furthermore, because the analysis is applied locally at a specific depth range, it is less susceptible to the effects of overburden anisotropy and noise. The dominant fracture orientations from carbonate reservoirs of four oilfields were compared to those interpreted from fullbore microimager and core data. Fractures in two offshore reservoirs strike NNE-SSW and NW-SE, which are related to Zagros stress. Fractures in two onshore reservoir strikes NE-SW, while in deeper onshore reservoir fractures are aligned with N-S direction. The findings of this study are promising, particularly for the fractured reservoirs especially those located in Abu Dhabi, which are characterized by high heterogeneity and complex fracture network related to complex tectonic history. In order to obtain geometrical parameters of fractures at seismic scale, it is recommended to implement the analysis adapted in this study after acquiring three component zero-offset vertical seismic profiling.
KW - Fractures
KW - shear wave splitting
KW - velocity analysis
KW - vertical seismic profiling
UR - http://www.scopus.com/inward/record.url?scp=85146802255&partnerID=8YFLogxK
U2 - 10.46690/ager.2023.02.04
DO - 10.46690/ager.2023.02.04
M3 - Article
AN - SCOPUS:85146802255
SN - 2207-9963
VL - 7
SP - 99
EP - 110
JO - Advances in Geo-Energy Research
JF - Advances in Geo-Energy Research
IS - 2
ER -