Matches in SemOpenAlex for { <https://semopenalex.org/work/W3114976235> ?p ?o ?g. }
Showing items 1 to 96 of
96
with 100 items per page.
- W3114976235 endingPage "234301" @default.
- W3114976235 startingPage "234301" @default.
- W3114976235 abstract "Biot model has widely been used in geophysics, petroleum engineering, civil engineering, and ocean engineering since it was presented, and thus the research on the wave propagation in saturated porous medium has made much progress. However, fully saturated porous medium is rarely found in nature. Almost all the rocks or soils contain two kinds of fluids, such as gas and petroleum. Many researches have been done on the wave propagation in unsaturated porous medium. As is well known, a small volume of gas bubbles existing in a liquid can greatly change the velocity and attenuation of acoustic wave in the liquid. Evidences are beginning to be accumulated that the velocity and attenuation of acoustic wave in a saturated marine sediment can be affected by the gas bubbles existing in the saturated liquid. To investigate the sound propagation in a porous medium when the pore water contains a small number of air bubbles, in this paper we integrate the volume vibrations of bubbles in pore water into the continuity equation of pore-fluid filtration in porous medium based on Biot theory, so as to obtain the continuity equation of pore-fluid filtration with bubble volume vibration. On this basis, according to the relationship between the instantaneous radius of bubble and the background pressure of the medium under the linear vibration of bubble, as well as the equations of motion of the fluid medium and porous medium, a new displacement vector wave equation of porous medium under the influence of bubble is derived, which establishes the model for the sound velocity dispersion and attenuation prediction under the unsaturated porous medium. The presence of air bubbles increases the compressibility of pore fluid, which leads to the decrease in the sound velocity of the bubbly saturated porous medium. When the wave frequency equals the resonance frequency of the bubbles, the bubbles in pore water will produce resonance; the medium will present high dispersion and the velocity can greatly exceed the gas-free velocity. However, these have not been measured in field data. The absorption cross section of the air bubble can reach a maximum value, which leads to the maximum attenuation of the porous medium. It should be noted that the attenuation coefficient calculated with this model is related to the damping of the bubble motion due to radiation, thermal and internal friction, and the dissipation of the relative motion between the pore water and porous solid frame. The obtained numerical analysis is consistent with the above conclusion, which indicates that the volume concentration, the bubble size and the excitation frequency of the sound field are important parameters affecting the sound wave propagation in the saturated porous medium containing few bubbles." @default.
- W3114976235 created "2021-01-05" @default.
- W3114976235 creator A5032214929 @default.
- W3114976235 creator A5063925044 @default.
- W3114976235 date "2016-01-01" @default.
- W3114976235 modified "2023-09-26" @default.
- W3114976235 title "Effect of linear bubble vibration on wave propagation in unsaturated porous medium containing air bubbles" @default.
- W3114976235 cites W1971996152 @default.
- W3114976235 cites W1974236982 @default.
- W3114976235 cites W1979159060 @default.
- W3114976235 cites W1982157510 @default.
- W3114976235 cites W1999647928 @default.
- W3114976235 cites W2000474073 @default.
- W3114976235 cites W2006295209 @default.
- W3114976235 cites W2008375313 @default.
- W3114976235 cites W2018388404 @default.
- W3114976235 cites W2060478388 @default.
- W3114976235 cites W207955491 @default.
- W3114976235 cites W2082738488 @default.
- W3114976235 cites W2088061914 @default.
- W3114976235 cites W2097161354 @default.
- W3114976235 cites W2161017903 @default.
- W3114976235 cites W2345394035 @default.
- W3114976235 cites W3112273498 @default.
- W3114976235 cites W3113170524 @default.
- W3114976235 doi "https://doi.org/10.7498/aps.65.234301" @default.
- W3114976235 hasPublicationYear "2016" @default.
- W3114976235 type Work @default.
- W3114976235 sameAs 3114976235 @default.
- W3114976235 citedByCount "6" @default.
- W3114976235 countsByYear W31149762352017 @default.
- W3114976235 countsByYear W31149762352018 @default.
- W3114976235 countsByYear W31149762352022 @default.
- W3114976235 crossrefType "journal-article" @default.
- W3114976235 hasAuthorship W3114976235A5032214929 @default.
- W3114976235 hasAuthorship W3114976235A5063925044 @default.
- W3114976235 hasBestOaLocation W31149762351 @default.
- W3114976235 hasConcept C105569014 @default.
- W3114976235 hasConcept C105795698 @default.
- W3114976235 hasConcept C115341296 @default.
- W3114976235 hasConcept C120665830 @default.
- W3114976235 hasConcept C121332964 @default.
- W3114976235 hasConcept C128489963 @default.
- W3114976235 hasConcept C157915830 @default.
- W3114976235 hasConcept C159985019 @default.
- W3114976235 hasConcept C181965411 @default.
- W3114976235 hasConcept C184652730 @default.
- W3114976235 hasConcept C192562407 @default.
- W3114976235 hasConcept C198394728 @default.
- W3114976235 hasConcept C20556612 @default.
- W3114976235 hasConcept C24890656 @default.
- W3114976235 hasConcept C33923547 @default.
- W3114976235 hasConcept C44886760 @default.
- W3114976235 hasConcept C57879066 @default.
- W3114976235 hasConcept C6648577 @default.
- W3114976235 hasConcept C97355855 @default.
- W3114976235 hasConceptScore W3114976235C105569014 @default.
- W3114976235 hasConceptScore W3114976235C105795698 @default.
- W3114976235 hasConceptScore W3114976235C115341296 @default.
- W3114976235 hasConceptScore W3114976235C120665830 @default.
- W3114976235 hasConceptScore W3114976235C121332964 @default.
- W3114976235 hasConceptScore W3114976235C128489963 @default.
- W3114976235 hasConceptScore W3114976235C157915830 @default.
- W3114976235 hasConceptScore W3114976235C159985019 @default.
- W3114976235 hasConceptScore W3114976235C181965411 @default.
- W3114976235 hasConceptScore W3114976235C184652730 @default.
- W3114976235 hasConceptScore W3114976235C192562407 @default.
- W3114976235 hasConceptScore W3114976235C198394728 @default.
- W3114976235 hasConceptScore W3114976235C20556612 @default.
- W3114976235 hasConceptScore W3114976235C24890656 @default.
- W3114976235 hasConceptScore W3114976235C33923547 @default.
- W3114976235 hasConceptScore W3114976235C44886760 @default.
- W3114976235 hasConceptScore W3114976235C57879066 @default.
- W3114976235 hasConceptScore W3114976235C6648577 @default.
- W3114976235 hasConceptScore W3114976235C97355855 @default.
- W3114976235 hasIssue "23" @default.
- W3114976235 hasLocation W31149762351 @default.
- W3114976235 hasOpenAccess W3114976235 @default.
- W3114976235 hasPrimaryLocation W31149762351 @default.
- W3114976235 hasRelatedWork W1505917593 @default.
- W3114976235 hasRelatedWork W1981355080 @default.
- W3114976235 hasRelatedWork W1989761411 @default.
- W3114976235 hasRelatedWork W1994435521 @default.
- W3114976235 hasRelatedWork W2005313586 @default.
- W3114976235 hasRelatedWork W2006151930 @default.
- W3114976235 hasRelatedWork W2014039780 @default.
- W3114976235 hasRelatedWork W237540425 @default.
- W3114976235 hasRelatedWork W2389595774 @default.
- W3114976235 hasRelatedWork W4289601188 @default.
- W3114976235 hasVolume "65" @default.
- W3114976235 isParatext "false" @default.
- W3114976235 isRetracted "false" @default.
- W3114976235 magId "3114976235" @default.
- W3114976235 workType "article" @default.