Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks

Porous reservoirs with aligned fractures exhibit frequency-dependent seismic anisotropy because of wave-induced fluid flow between pores and fractures. To relate the elastic properties of porous rocks with aligned fractures at low frequency, we use the linear slip model of fractures and anisotropic...

Full description

Bibliographic Details
Main Authors: Brown, Luke, Gurevich, Boris
Format: Journal Article
Published: ASEG - Australian Society of Exploration Geophysicists 2004
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/21409
_version_ 1848750582538436608
author Brown, Luke
Gurevich, Boris
author_facet Brown, Luke
Gurevich, Boris
author_sort Brown, Luke
building Curtin Institutional Repository
collection Online Access
description Porous reservoirs with aligned fractures exhibit frequency-dependent seismic anisotropy because of wave-induced fluid flow between pores and fractures. To relate the elastic properties of porous rocks with aligned fractures at low frequency, we use the linear slip model of fractures and anisotropic Gassmann fluid substitution. We combine this low-frequency anisotropic Gassmann model with a dispersion relationship, based on a penny-shaped crack model of fractures, to account for frequency-dependent anisotropy. The combined model is validated using experimental measurements of angle-dependent wave velocities of synthetic porous sandstone with aligned disc-shaped cracks. For the low-frequency anisotropic Gassmann model, the agreement between the measured and predicted velocities is reasonably good for both S-wave velocities, but P-wave anisotropy is overestimated by approximately 25%. This quantitative difference can be explained by fluid diffusion effects occurring at the relatively high frequencies used in the experiment (100 kHz), which are not accounted for by the low-frequency assumption of anisotropic Gassmann theory. The predictions of the combined frequency-dependent model, which considers this effect, give very good agreement with measured velocities.
first_indexed 2025-11-14T07:39:07Z
format Journal Article
id curtin-20.500.11937-21409
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T07:39:07Z
publishDate 2004
publisher ASEG - Australian Society of Exploration Geophysicists
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-214092017-09-13T13:52:23Z Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks Brown, Luke Gurevich, Boris fractures dispersion poroelasticity anisotropy Porous reservoirs with aligned fractures exhibit frequency-dependent seismic anisotropy because of wave-induced fluid flow between pores and fractures. To relate the elastic properties of porous rocks with aligned fractures at low frequency, we use the linear slip model of fractures and anisotropic Gassmann fluid substitution. We combine this low-frequency anisotropic Gassmann model with a dispersion relationship, based on a penny-shaped crack model of fractures, to account for frequency-dependent anisotropy. The combined model is validated using experimental measurements of angle-dependent wave velocities of synthetic porous sandstone with aligned disc-shaped cracks. For the low-frequency anisotropic Gassmann model, the agreement between the measured and predicted velocities is reasonably good for both S-wave velocities, but P-wave anisotropy is overestimated by approximately 25%. This quantitative difference can be explained by fluid diffusion effects occurring at the relatively high frequencies used in the experiment (100 kHz), which are not accounted for by the low-frequency assumption of anisotropic Gassmann theory. The predictions of the combined frequency-dependent model, which considers this effect, give very good agreement with measured velocities. 2004 Journal Article http://hdl.handle.net/20.500.11937/21409 10.1071/EG04111 ASEG - Australian Society of Exploration Geophysicists fulltext
spellingShingle fractures
dispersion
poroelasticity
anisotropy
Brown, Luke
Gurevich, Boris
Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks
title Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks
title_full Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks
title_fullStr Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks
title_full_unstemmed Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks
title_short Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks
title_sort frequency-dependent seismic anisotropy of porous rocks with penny-shaped cracks
topic fractures
dispersion
poroelasticity
anisotropy
url http://hdl.handle.net/20.500.11937/21409