HR: 0830h
AN: OS51B-0850 [PDF]
TI: An Inversion Algorithm for Gas Hydrate Quantification
AU: * Chand, S
EM: chand@soc.soton.ac.uk
AF: Southampton Oceanography Centre, European Way, Southampton, SO14 3ZH
United Kingdom
AU: Priest, J A
EM: J.A.PRIEST@soton.ac.uk
AF: Southampton Oceanography Centre, European Way, Southampton, SO14 3ZH
United Kingdom
AU: Gei, D
EM: dgei@ogs.trieste.it
AF: Oceanografia e di Geofisica Sperimentale, Borgo Grotta Gigante, 42c, Sgonico, Trieste, 34010
Italy
AU: Minshull, T
EM: tmin@soc.soton.ac.uk
AF: Southampton Oceanography Centre, European Way, Southampton, SO14 3ZH
United Kingdom
AU: Best, A
EM: aib@soc.soton.ac.uk
AF: Southampton Oceanography Centre, European Way, Southampton, SO14 3ZH
United Kingdom
AU: Carcione, J M
EM: jcarcione@ogs.trieste.it
AF: Oceanografia e di Geofisica Sperimentale, Borgo Grotta Gigante, 42c, Sgonico, Trieste, 34010
Italy
AB:
The presence of gas hydrate in oceanic sediments increases the velocity and attenuation of the composite medium. The effects
of hydrate saturation on compressional and shear wave velocities and their attenuations are different. These effects depend
on the sediment microstructure, composition, the level of hydrate saturation and also the mode of hydrate formation in the
pore space (inclusions vs connected). Using these parameters, we predict the velocities and attenuations of the sediments
without hydrate, and thereby quantify hydrate saturation as deviation from these predicted velocities and attenuation
factors. The influence of different parameters used and the variation of the predicted velocities and attenuations with
frequency are studies using field and laboratory based datasets. Based on these studies we have developed an inversion
algorithm to predict the gas hydrate saturation from velocities (Vp and Vs) and attenuation factors (Qp-1 and Qs-1) using
porosity and physical parameters of the minerals constituting the sediment.
Uncertainties in the estimates of hydrate saturation were quantified by testing the method on different datasets with
accurately known parameters and corresponding estimated uncertainties. The algorithm will give hydrate saturation along with
uncertainty. Using velocities and attenuation factors, the present method can predict the hydrate saturation accurately. The
uncertainty in hydrate saturation is estimated to be less than 5% in usual situations. The method is applied to velocity
sections estimated from OBS and multi-channel seismic data from the Storegga slide area, offshore Norway and offshore
Svalbard. The method is also tested on velocity and attenuation measurements at seismic frequencies using a resonant column
apparatus.
DE: 3025 Marine seismics (0935)
DE: 5102 Acoustic properties
DE: 8105 Continental margins and sedimentary basins
SC: Ocean Sciences [OS]
MN: 2003 Fall Meeting