Fabricius, Ida L. et al. (2010): Elastic moduli of dry and water-saturated carbonates; effect of depositional texture, porosity, and permeability

Leg/Site/Hole:
ODP 194
Identifier:
2010-077431
georefid

10.1190/1.3374690
doi

Creator:
Fabricius, Ida L.
Technical University of Denmark, Department of Environmental Engineering, Lyngby, Denmark
author

Bachle, Gregor T.
ExxonMobil Upstream Research Company, United States
author

Eberli, Gregor P.
University of Miami, United States
author

Identification:
Elastic moduli of dry and water-saturated carbonates; effect of depositional texture, porosity, and permeability
2010
Geophysics
Society of Exploration Geophysicists, Tulsa, OK, United States
75
3
N65-N78
Elastic moduli of water-saturated sedimentary rocks are in some cases different from moduli derived using Gassmann fluid substitution on data for rocks in the dry state. To address this discrepancy, we use a data set representing 115 carbonate samples from different depositional settings and a wide range of porosity and permeability. Depositional texture is reflected in the effect of water on elastic moduli and in the porosity-permeability relationship. Depositional texture is taken into account when porosity and permeability are combined in the effective specific surface of pores, which is related for a given pore fluid to the reference frequency as defined by Biot. For a given frequency of elastic waves, we obtain Biot"s frequency ratio between measured ultrasonic wave frequency and Biot reference frequency. For most samples with a frequency ratio above 10, elastic moduli in the water-saturated case are higher than predicted from elastic moduli in the dry case by Gassmann fluid substitution. This stiffening effect of water in some cases may be described by Biot's high-frequency model, although in heterogeneous samples, a squirt mechanism is more probable. For data representing frequency ratios of 0.01 to 1, Gassmann fluid substitution works well. For samples with frequency ratios below 0.001, elastic moduli in the water-saturated case are lower than would be expected according to Gassmann's equations or to Biot's theory. This water-softening effect becomes stronger with decreasing frequency ratio. Water softening or stiffening of elastic moduli may be addressed by effective-medium modeling. In this study, we used the isoframe model to quantify water softening as a function of frequency ratio.
English
Serial
Coverage:Geographic coordinates:
North:-20.1000
West:151.4500East: 153.0500
South:-21.0500

Engineering geology; Applied geophysics; algorithms; carbonate rocks; elasticity; geophysical methods; Leg 194; Ocean Drilling Program; permeability; porosity; rock mechanics; sedimentary rocks; seismic methods; textures;

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