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dc.contributor.author
Guo, Junxin  
dc.contributor.author
Rubino, Jorge German  
dc.contributor.author
Barbosa, Nicolas Daniel  
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Glubokovskikh, Stanislav  
dc.contributor.author
Gurevich, Boris  
dc.date.available
2020-02-11T19:57:02Z  
dc.date.issued
2018-01  
dc.identifier.citation
Guo, Junxin; Rubino, Jorge German; Barbosa, Nicolas Daniel; Glubokovskikh, Stanislav; Gurevich, Boris; Seismic dispersion and attenuation in saturated porous rocks with aligned fractures of finite thickness: Theory and numerical simulations - part 1: P-wave perpendicular to the fracture plane; Society of Exploration Geophysicists; Geophysics; 83; 1; 1-2018; WA49-WA62  
dc.identifier.issn
0016-8033  
dc.identifier.uri
http://hdl.handle.net/11336/97208  
dc.description.abstract
When a seismic wave travels through a fluid-saturated porous reservoir containing aligned fractures, it induces oscillatory fluid flow between the fractures and the embedding background medium. Although there are numerous theoretical models for quantifying the associated seismic attenuation and velocity dispersion, they rely on certain assumptions, such as infinitesimal fracture thickness and dilute fracture concentration, which rarely hold in real reservoirs. The objective of this work is to overcome some of these limitations and, therefore, improve the applicability of the available theoretical models. To do so, we extend existing models to the finite fracture thickness case for P-waves propagating perpendicular to the fracture plane using the so-called branching function approach. We consider three types of fractures, namely, periodically and randomly spaced planar fractures, as well as penny-shaped cracks. The extended unified model is then tested by comparing with corresponding numerical simulations based on Biot's theory of poroelasticity. We consider two cases of 2D rock samples with aligned elliptical fractures, one with low fracture density and the other with high fracture density. The results indicate that the influence of the finite fracture thickness on seismic dispersion and attenuation is small at low frequencies when the fluid pressure has enough time to equilibrate between the fractures and background medium. However, this effect is significant at high frequencies when there is not sufficient time for the fluid pressure equilibration. In addition, the theoretical predictions of the pennyshaped crack model are found to match the numerical simulation results very well, even under relatively high fracture density. Analyses of stress distributions suggest that the small discrepancies found between theoretical predictions and numerical simulations are probably due to fracture interactions. In a companion paper, we will extend the analysis for considering the full stiffness matrix and anisotropic properties of such rocks.  
dc.format
application/pdf  
dc.language.iso
eng  
dc.publisher
Society of Exploration Geophysicists  
dc.rights
info:eu-repo/semantics/openAccess  
dc.rights.uri
https://creativecommons.org/licenses/by-nc-sa/2.5/ar/  
dc.subject
ATTENUATION  
dc.subject
ANISOTROPY  
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DISPERSION  
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FRACTURES  
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ROCK PHYSICS  
dc.subject.classification
Geoquímica y Geofísica  
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Ciencias de la Tierra y relacionadas con el Medio Ambiente  
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CIENCIAS NATURALES Y EXACTAS  
dc.title
Seismic dispersion and attenuation in saturated porous rocks with aligned fractures of finite thickness: Theory and numerical simulations - part 1: P-wave perpendicular to the fracture plane  
dc.type
info:eu-repo/semantics/article  
dc.type
info:ar-repo/semantics/artículo  
dc.type
info:eu-repo/semantics/publishedVersion  
dc.date.updated
2019-10-15T17:30:41Z  
dc.journal.volume
83  
dc.journal.number
1  
dc.journal.pagination
WA49-WA62  
dc.journal.pais
Estados Unidos  
dc.description.fil
Fil: Guo, Junxin. Curtin University; Australia  
dc.description.fil
Fil: Rubino, Jorge German. Comisión Nacional de Energía Atómica. Centro Atómico Bariloche; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.description.fil
Fil: Barbosa, Nicolas Daniel. Universite de Lausanne; Suiza  
dc.description.fil
Fil: Glubokovskikh, Stanislav. Curtin University; Australia  
dc.description.fil
Fil: Gurevich, Boris. Curtin University; Australia. Commonwealth Scientific And Industrial Research Organization; Australia  
dc.journal.title
Geophysics  
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/doi/http://dx.doi.org/10.1190/GEO2017-0065.1  
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/url/https://library.seg.org/doi/10.1190/geo2017-0065.1