SEISMIC ATTENUATION DUE TO WAVE-INDUCED FLOW

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dc.contributor.author Pride S.R.
dc.contributor.author Berryman J.G.
dc.contributor.author Harris J.M.
dc.date.accessioned 2022-10-27T10:15:36Z
dc.date.available 2022-10-27T10:15:36Z
dc.date.issued 2004
dc.identifier https://elibrary.ru/item.asp?id=41842093
dc.identifier.citation Journal of Geophysical Research: Solid Earth, 2004, 109, 1, B01201 1-19
dc.identifier.issn 2169-9356
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/39161
dc.description.abstract Analytical expressions for three P-wave attenuation mechanisms in sedimentary rocks are given a unified theoretical framework. Two of the models concern wave-induced flow due to heterogeneity in the elastic moduli at mesoscopic scales (scales greater than grain sizes but smaller than wavelengths). In the first model, the heterogeneity is due to lithological variations (e.g., mixtures of sands and clays) with a single fluid saturating all the pores. In the second model, a single uniform lithology is saturated in mesoscopic ''patches'' by two immiscible fluids (e.g., air and water). In the third model, the heterogeneity is at ''microscopic'' grain scales (broken grain contacts and/or micro-cracks in the grains) and the associated fluid response corresponds to ''squirt flow''. The model of squirt flow derived here reduces to proper limits as any of the fluid bulk modulus, crack porosity, and/or frequency is reduced to zero. It is shown that squirt flow is incapable of explaining the measured level of loss (10{sup -2} < Q{sup -1} < 10{sup -1}) within the seismic band of frequencies (1 to 10{sup 4} Hz); however, either of the two mesoscopic scale models easily produce enough attenuation to explain the field data.
dc.subject seismic attenuation
dc.subject poroelasticity
dc.subject seismic dispersion
dc.title SEISMIC ATTENUATION DUE TO WAVE-INDUCED FLOW
dc.type Статья


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