Bayesian Seismic Inversion of Geological and Engineering Sweet-Spot Parameters in Monoclinic Media Embedded in a VTI Background
Байесовская сейсмическая инверсия геолого-инженерных параметров «sweet-spot» в моноклинных средах, вкрапленных в фон VTI
2026-01-01
SCID: 54.1/nkp7c2g6
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GESS parametersPP-wave reflection coefficientSichuan Basin shale reservoirsVTI backgroundanisotropic Gassmann fluid substitutionazimuthal seismic inversionbayesian seismic inversionbrittleness index (BI)fluid bulk modulushorizontal and tilted fracture densitiesmonoclinic mediumoffset-vector-tile (OVT) domainsynthetic azimuthal datavertical effective stress correlationwell data and microseismic validation
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Abstract (AI)
Given that fractures in the shale gas-bearing reservoirs are tilted and horizontal, it is appropriate to model the fractured formation as the monoclinic medium with tilted fractures embedded in the vertically transverse isotropic (VTI) background. Within a monoclinic medium, our contribution focuses on the direct azimuthal seismic inversion of the comprehensive geological and engineering sweet-spot (GESS) parameters for fluid identification, rock brittleness assessment, stress determination, and the detection of two distinct natural fracture sets. With the anisotropic Gassmann fluid substitution, we first derive the highly precise stiffness coefficients of saturated monoclinic media. Subsequently, a new linearized PP-wave reflection coefficient integrating fluid bulk modulus, brittleness index (BI), vertical effective stress correlation parameter, as well as horizontal and tilted fracture densities, is derived. A stepwise Bayesian strategy is then employed to invert above GESS parameters from the offset-vector-tile (OVT) domain seismic data. The robustness of the method is validated by the synthetic azimuthal data with varying signal-to-noise (S/N) ratios. Finally, the effectiveness is evidenced through its application to fractured gas-bearing shale reservoirs in the Sichuan Basin, China, systematically substantiated by well data, geological structures, and microseismic events. It provides predictions of the fluid bulk modulus, BI, vertical effective stress correlation parameter, horizontal and tilted fracture densities.
Key Findings
1
A new linearized PP-wave reflection coefficient is formulated that includes fluid bulk modulus, brittleness index (BI), vertical effective stress correlation parameter, and horizontal and tilted fracture densities.
2
A stepwise Bayesian inversion strategy is developed to recover GESS parameters from offset-vector-tile (OVT) domain seismic data and is validated on synthetic azimuthal data with varying S/N ratios.
3
Application to Sichuan Basin fractured gas-bearing shale demonstrates effective prediction of fluid bulk modulus, BI, vertical effective stress correlation parameter, and horizontal and tilted fracture densities, corroborated by well data, geological structures, and microseismic events.
4
Fractured shale formations with tilted and horizontal fractures are appropriately modeled as monoclinic media embedded in a VTI background.
5
The authors derive highly precise stiffness coefficients for fluid-saturated monoclinic media using anisotropic Gassmann fluid substitution.
Research Object
Fractured shale gas-bearing reservoir modelled as a monoclinic medium with tilted fractures embedded in a VTI background
Research Subject
Bayesian azimuthal seismic inversion of geological and engineering sweet-spot (GESS) parameters — including fluid bulk modulus, brittleness index, vertical effective stress correlation parameter, and horizontal and tilted fracture densities — using anisotropic Gassmann substitution and a linearized PP-wave reflection coefficient from OVT-domain seismic data
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2026-01-01
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