Elastic-wave sensitivity propagation

Author:

Denli Huseyin12,Huang Lianjie12

Affiliation:

1. Formerly Los Alamos National Laboratory, Geophysics Group, Los Alamos, New Mexico, U.S.A. .

2. Los Alamos National Laboratory, Geophysics Group, Los Alamos, New Mexico, U.S.A. .

Abstract

Effective and reliable reservoir monitoring is critically important for optimizing oil/gas production and ensuring safe geologic carbon sequestration. It requires an optimal sensor deployment that uses a minimum number of sensors to record the most significant information resulting from reservoir property changes. Conventional monitoring survey designs are typically based on seismic-wavefield illumination analyses, which cannot alone determine the best receiver locations for effective and reliable monitoring of reservoir property changes. We propose a new approach for designing seismic monitoring surveys by analyzing the sensitivities of elastic waves with respect to reservoir geophysical property changes. The method is based on differentiating the elastic-wave equations with respect to geophysical parameters. The resulting sensitivity equations are solved simultaneously with the elastic-wave equations using a finite-difference scheme. Numerical studies confirm that time-lapse seismic survey designs based on elastic-wave sensitivity analysis can be totally different from those based on elastic-wavefield illuminations. For time-lapse seismic monitoring, receivers should be placed at locations where elastic-wave sensitivities are significant. Modeling of elastic-wave sensitivity propagation provides a fundamental tool for effective seismic monitoring survey designs.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Elastic‐Wave Sensitivity Propagation for Optimal Time‐Lapse Seismic Survey Design;Geophysical Monitoring for Geologic Carbon Storage;2022-03-07

2. Seismic wave simulation of a complex foothill belt;Journal of Geophysics and Engineering;2020-08-04

3. Numerical Modeling of Anisotropic Elastic-Wave Sensitivity Propagation for Optimal Design of Time-Lapse Seismic Surveys;Communications in Computational Physics;2020-06

4. Rapid 4D FWI using a local wave solver;The Leading Edge;2016-12

5. Progress in monitoring strategies for risk reduction in geologic CO2 storage;International Journal of Greenhouse Gas Control;2016-08

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