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AVO inversion and poroelasticity with P- and S-wave moduli
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  • journal_title:Geophysics
  • Contributor:Zhaoyun Zong ; Xingyao Yin ; Guochen Wu
  • Publisher:Society of Exploration Geophysicists
  • Date:2012-11-01
  • Format:text/html
  • Language:en
  • Identifier:10.1190/geo2011-0214.1
  • journal_abbrev:Geophysics
  • issn:0016-8033
  • volume:77
  • issue:6
  • firstpage:N17
  • section:Seismic Amplitude Interpretation
摘要

The fluid term in the Biot-Gassmann equation plays an important role in reservoir fluid discrimination. The density term imbedded in the fluid term, however, is difficult to estimate because it is less sensitive to seismic amplitude variations. We combined poroelasticity theory, amplitude variation with offset (AVO) inversion, and identification of P- and S-wave moduli to present a stable and physically meaningful method to estimate the fluid term, with no need for density information from prestack seismic data. We used poroelasticity theory to express the fluid term as a function of P- and S-wave moduli. The use of P- and S-wave moduli made the derivation physically meaningful and natural. Then we derived an AVO approximation in terms of these moduli, which can then be directly inverted from seismic data. Furthermore, this practical and robust AVO-inversion technique was developed in a Bayesian framework. The objective was to obtain the maximum a posteriori solution for the P-wave modulus, S-wave modulus, and density. Gaussian and Cauchy distributions were used for the likelihood and a priori probability distributions, respectively. The introduction of a low-frequency constraint and statistical probability information to the objective function rendered the inversion more stable and less sensitive to the initial model. Tests on synthetic data showed that all the parameters can be estimated well when no noise is present and the estimated P- and S-wave moduli were still reasonable with moderate noise and rather smooth initial model parameters. A test on a real data set showed that the estimated fluid term was in good agreement with the results of drilling.

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