HR: 1340h
AN: OS23A-1054 [Abstracts]
TI: Pseudo 3-D analysis of seismic data at seep locations in the Wairarapa area offshore New Zealand
AU: * Bialas, J
EM: jbialas@ifm-geomar.de
AF: IFM-GEOMAR, Wischhofstr. 1-3, Kiel, 24148, Germany
AU: Hardieck, M
EM: mhardieck@ifm-geomar.de
AF: CORELAB Univeristy of Kiel, Otto-Hahn-Platz 3, Kiel, 24098, Germany
AU: Netzeband, G L
EM: gnetzeband@ifm-geomar.de
AF: IFM-GEOMAR, Wischhofstr. 1-3, Kiel, 24148, Germany
AU: Krabbenhoeft, A
EM: akrabbenhoeft@ifm-geomar.de
AF: IFM-GEOMAR, Wischhofstr. 1-3, Kiel, 24148, Germany
AB:
Gas hydrates constitute a large reservoir for hydrocarbon gases, forming at continental slopes at high pressures
and low temperatures. They may play a role in slope stability although the influence of changes in the hydrate
stability conditions on slope failures are not yet fully explored. During the cruise SO 191-1 on RV Sonne, a number
of multichannel seismic profiles have been recorded together with wide-angle observations to analyze gas and
gas hydrate deposits in the area of Wairarapa, south-east of the Northern Island of New Zealand.
This area is dominated by a compressional/transpressional tectonic setting related to the subduction of the
Pacific Plate under the Australian Plate. Bottom simulating reflections (BSR) have been observed along the entire
margin and also on our profiles. Where the base of gas hydrate stability (BGHSZ) follows the stratigraphy, a
bundle of high-amplitude reflections appears instead of the BSR. Considerable signal attenuation beneath the
BGHSZ reduces the signal penetration from up to 1.5 s TWT beneath the seafloor to 0.5s TWT. Several slumps
and apparent sediment wave formations are found where the slope steepens.
While the present seafloor bathymetry shows an elongated high, the seismic sections reveal a second anticlinal
structure in the subsurface and a depression in between indicating a change of tectonic regime presumably in
the past 1 or 2 million years. This corresponds to a rotation of the Hikurangi forearc of 50° from WNW in early
Miocene to ENE today. The stratigraphy above the BSR seems to be dominated by relatively rapid deposition from
mass wasting processes such as turbidites and channelized sediment transport deposits. Other than some
minor fault displacements and fractures the structural deformation imprints appear to have ceased in the upper
stratigraphic record. The position of a paleo-canyon can be clearly traced in deeper strata in between the
structural highs.
Heat flow values estimated from the depth of the BSR are constant in the working area except beneath the
slumps. This indicates that the BSR has not yet adapted to the new seafloor level, i.e. the slumping has
happened within the last few thousand years.
UR: http://www.ifm-
geomar.de/index.php?id=newvents&L=1
DE: 0910 Data processing
DE: 0930 Oceanic structures
DE: 3004 Gas and hydrate systems
SC: Ocean Sciences [OS]
MN: 2007 Fall Meeting