Seismic inversion for reservoir properties combining statistical rock physics and geostatistics: A review

Author:

Bosch Miguel123,Mukerji Tapan123,Gonzalez Ezequiel F.123

Affiliation:

1. Universidad Central de Venezuela, Caracas, Venezuela. .

2. Stanford University, Center for Reservoir Forecasting, Department of Energy Resources Engineering, Stanford, California, U.S.A. .

3. Shell International Exploration and Production Inc., Houston, Texas, U.S.A. .

Abstract

There are various approaches for quantitative estimation of reservoir properties from seismic inversion. A general Bayesian formulation for the inverse problem can be implemented in two different work flows. In the sequential approach, first seismic data are inverted, deterministically or stochastically, into elastic properties; then rock-physics models transform those elastic properties to the reservoir property of interest. The joint or simultaneous work flow accounts for the elastic parameters and the reservoir properties, often in a Bayesian formulation, guaranteeing consistency between the elastic and reservoir properties. Rock physics plays the important role of linking elastic parameters such as impedances and velocities to reservoir properties of interest such as lithologies, porosity, and pore fluids. Geostatistical methods help add constraints of spatial correlation, conditioning to different kinds of data and incorporating subseismic scales of heterogeneities.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

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