EGU2020-6028
https://doi.org/10.5194/egusphere-egu2020-6028
EGU General Assembly 2020
© Author(s) 2020. This work is distributed under
the Creative Commons Attribution 4.0 License.

Acoustic signature of fluid substitution in reservoir rocks

Christian David1, Joël Sarout2, Christophe Barnes1, Jérémie Dautriat2, and Lucas Pimienta3
Christian David et al.
  • 1Université de Cergy-Pontoise, Dpt. Geosciences & Environment, 1 rue Descartes, F-95000 Neuville sur Oise (christian.david@u-cergy.fr)
  • 2CSIRO Energy, Perth, Australia
  • 3EPFL, Lausanne, Switzerland

During the production of hydrocarbon reservoirs, EOR operations, storage of CO2 underground or geothermal fluid exchanges at depth, fluid substitution processes can lead to significant changes in rock properties which can be captured from the variations in seismic waves attributes. In the laboratory, fluid substitution processes can be investigated using ultrasonic monitoring. 

The motivation of our study was to identify the seismic attributes of fluid substitution in reservoir rocks through a direct comparison between the variation in amplitude, velocity, spectral content, energy, and the actual fluid distribution in the rocks. Different arrays of ultrasonic P-wave sensors were used to record at constant time steps the waveforms during fluid substitution experiments. Two different kinds of experiments are presented: (i) water injection experiments in oil-saturated samples under stress in a triaxial setup mimicking EOR operations, (ii) spontaneous water imbibition experiments at room conditions.

In the water injection tests on a poorly consolidated sandstone saturated with oil and loaded at high deviatoric stresses, water weakening triggers mechanical instabilities leading to the rock failure. The onset of such instabilities can be followed with ultrasonic monitoring either in the passive mode (acoustic emissions recording) or in the active mode (P wave velocity survey).

In the water imbibition experiments, a methodology based on the analytical signal and instantaneous phase was designed to decompose each waveform into discrete wavelets associated with direct or reflected waves. The energy carried by the wavelets is very sensitive to the fluid substitution process: the coda wavelets are impacted as soon as imbibition starts and can be used as a precursor for remote fluid substitution. It is also shown that the amplitude of the first P-wave arrival is impacted by the upward moving fluid front before the P-wave velocity is. Several scenarios are discussed to explain the decoupling between P wave amplitude and velocity variations during fluid substitution processes.

How to cite: David, C., Sarout, J., Barnes, C., Dautriat, J., and Pimienta, L.: Acoustic signature of fluid substitution in reservoir rocks, EGU General Assembly 2020, Online, 4–8 May 2020, EGU2020-6028, https://doi.org/10.5194/egusphere-egu2020-6028, 2020

Displays

Display file