The presence of fluids in the pore space of rocks causes wave attenuation and dispersion by the mechanism broadly known as wave-induced fluid flow (WIFF). WIFF occurs as a seismic wave creates pressure gradients within the fluid phase and the resulting oscillatory movement of the fluid relative to the solid is accompanied with internal friction until the fluid pressure is equilibrated. If two immiscible pore fluids with substantially different fluid bulk moduli -such as water and gas- form patches, significant wave attenuation and dispersion result. Their frequency dependence is controlled by the size, shape, and spatial distribution of fluid patches. We focus on so-called mesoscopic patches referring to a length scale much larger than typi...
Saturation of porous rocks with a mixture of two fluids (known as partial saturation) has a substant...
Waves in patchy-saturated rocks are attenuated through the mechanism of wave-induced pressure diffus...
Using a numerical approach, we explore wave-induced fluid flow effects in partially saturated porous...
The presence of fluids in the pore space of rocks causes wave attenuation and dispersion by the mech...
Mesoscopic flow is a significant mechanism of fluid-related seismic attenuation in partiallysaturate...
Maximizing the recovery of known hydrocarbon reserves is one of the biggest challenges facing the pe...
Seismic waves propagating in porous rocks saturated with two immiscible fluids can be strongly atten...
Seismic time-lapse techniques are a valuable tool used to estimate the mobilization and distribution...
Summary. Wave-induced variations of pore pressure in a partially-saturated reservoir result in oscil...
Quantifying seismic attenuation during laboratory imbibition experiments can provide useful informat...
Seismic time-lapse techniques are a valuable tool used to estimate the mobilization and distribution...
International audience[1] In porous rocks saturated in patches by two immiscible fluids, seismic com...
Quantifying seismic attenuation during laboratory imbibition experiments can provide useful informat...
Seismic waves propagating in porous rocks saturated with two immiscible fluids can be strongly atten...
One major cause of elastic wave attenuation in heterogeneous porous media is wave-induced flow of th...
Saturation of porous rocks with a mixture of two fluids (known as partial saturation) has a substant...
Waves in patchy-saturated rocks are attenuated through the mechanism of wave-induced pressure diffus...
Using a numerical approach, we explore wave-induced fluid flow effects in partially saturated porous...
The presence of fluids in the pore space of rocks causes wave attenuation and dispersion by the mech...
Mesoscopic flow is a significant mechanism of fluid-related seismic attenuation in partiallysaturate...
Maximizing the recovery of known hydrocarbon reserves is one of the biggest challenges facing the pe...
Seismic waves propagating in porous rocks saturated with two immiscible fluids can be strongly atten...
Seismic time-lapse techniques are a valuable tool used to estimate the mobilization and distribution...
Summary. Wave-induced variations of pore pressure in a partially-saturated reservoir result in oscil...
Quantifying seismic attenuation during laboratory imbibition experiments can provide useful informat...
Seismic time-lapse techniques are a valuable tool used to estimate the mobilization and distribution...
International audience[1] In porous rocks saturated in patches by two immiscible fluids, seismic com...
Quantifying seismic attenuation during laboratory imbibition experiments can provide useful informat...
Seismic waves propagating in porous rocks saturated with two immiscible fluids can be strongly atten...
One major cause of elastic wave attenuation in heterogeneous porous media is wave-induced flow of th...
Saturation of porous rocks with a mixture of two fluids (known as partial saturation) has a substant...
Waves in patchy-saturated rocks are attenuated through the mechanism of wave-induced pressure diffus...
Using a numerical approach, we explore wave-induced fluid flow effects in partially saturated porous...