Hjem
Center for Modeling of Coupled Subsurface Dynamics

Varselmelding

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Research project

Microseismic imaging using rock physics-based full-waveform inversion

The main goal of the project is to develop accurate methodology for microseismic imaging based on full-waveform inversion. We focus on the development of scattering based approaches.

Hovedinnhold

Microseismic imaging includes localization of micro-seismic events and characterization of their source mechanisms. The accuracy of the source localization is highly dependent on the (generally anisotropic) velocity model. Conventional methods for microseismic imaging are typically based on manual travel time picking in an approximate velocity model. However, more accurate results can potentially be obtained by making use of a larger portion of the microseismic data; that is, if one performs a full-waveform inversion (FWI). In this project, we focus on the development of scattering based approaches to microseismic FWI. We have already developed fast integral equation methods for frequency domain wavefield modeling acoustic and anisotropic elastic media with monopole, dipole and moment tensor sources (Shekhar et al., 2023). Also, we have developed matrix-free scattering approaches to multi-parameter FWI in acoustic and anisotropic elastic media for improved reconstruction of the background velocity model (Jakobsen et al., 2023). Currently, we are improving on existing methods for FWI in anisotropic elastic media by using different parameterizations of seismic anisotropy. Also, we have are developing methods for inversion of microseismic waveform data for the microseismic source location and moment tensor using based on a combination of global and local optimization methods (Eide, 2023).
 

References
Shekhar, U., Jakobsen, M., Iversen, E., Berre, I. And Radu, F.A., 2023. Microseismic wavefield modelling in anisotropic elastic media using integral method. Geophysical Prospecting, accepted DOI: 10.1111/1365-2478.13416.

Jakobsen, M., Xiang, K. And van Dongen, K.W.A., 2023. Seismic and medical ultrasound imaging of velocity and density variations using nonlinear vectorial inverse scattering.  J. Acoust. Soc. Am. 153 (5), 3151-3164.

Eide, T.J., 2023. Microseismic waveform modeling and inversion using finite difference and global optimization methods. Master thesis, University of Bergen.

Funded by the VISTA program
Foto/ill.:
VISTA Program (vista.no)