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Alves, Tiago M. et al. (2006): Mesozoic-Cenozoic evolution of North Atlantic continental-slope basins; the Peniche Basin, western Iberian margin
Leg/Site/Hole:
Related Expeditions:
ODP 210
Identifier:
ID:
2006-022811
Type:
georefid
ID:
10.1306/08110504138
Type:
doi
Creator:
Name:
Alves, Tiago M.
Affiliation:
Instituto Nacional de Engenharia, Tecnologia e Inovacao, Departamento de Geologia Marinha, Amadora, Portugal
Role:
author
Name:
Moita, Carlos
Affiliation:
Direccao Geral de Geologia e Energia, Portugal
Role:
author
Name:
Sandnes, Frode
Affiliation:
TGS-NOPEC Geophysical Company, Norway
Role:
author
Name:
Cunha, Tiago
Affiliation:
Oxford University, United Kingdom
Role:
author
Name:
Monteiro, Jose Hipolito
Affiliation:
Universidade de Aveiro, Portugal
Role:
author
Name:
Pinheiro, Luis M.
Affiliation:
Role:
author
Identification:
Title:
Mesozoic-Cenozoic evolution of North Atlantic continental-slope basins; the Peniche Basin, western Iberian margin
Year:
2006
Source:
AAPG Bulletin
Publisher:
American Association of Petroleum Geologists, Tulsa, OK, United States
Volume:
90
Issue:
1
Pages:
31-60
Abstract:
New regional (two-dimensional) seismic reflection data, published Deep-Sea Drilling Project-Ocean Drilling Program reports, and unpublished shallow-offshore well information characterize the Mesozoic-Cenozoic evolution of the western Iberian continental slope north of 38 degrees 45'N. Two distinct sectors bounded by first-order transfer faults exist between the Galicia Bank and the Nazare fault. The northernmost sector 1 is filled by Triassic-Aptian (prebreakup) sequences, reaching more than 3.5 s two-way traveltime (TWTT) in thickness in distinct half grabens. Salt pillows, salt ridges, minibasins, and salt-detached overburden faults were generated during the Mesozoic and reactivated in the Cenozoic. Sector 2 shows Triassic-Jurassic units more than 2.0 s TWTT thick, underlying east-tilting half grabens of Early Cretaceous age. Salt structures in this sector evolved into mature salt diapirs. Postbreakup units are up to 2.0 s TWTT thick in both sectors. The evolution of the study area replicates evolutionary settings that have previously been proposed for nonvolcanic passive margins. However, some distinct features are noted: (1) widespread Triassic-Berriasian units deposited over rotated tilt blocks represent the early rifting stage; (2) Early Cretaceous subbasins showing rift-climax units, most likely formed during the advanced rifting stage, are spatially constrained to an approximately 100-km (62-mi)-wide region stretched along the continental slope; and (3) listric blocks and their associated low-angle (deep) detachment faults, formed on the distal margin during the advanced rifting and transition to sea-floor spreading stages, show no developed rift-climax units above them. From the early rifting stage onward, Mesozoic faults and halokinetic structures induced local differences in the thickness and character of seismic facies. Cenozoic (Alpine) tectonism promoted the reactivation of older Mesozoic structures.
Language:
English
Genre:
Serial
Rights:
URL:
Coverage:
Geographic coordinates:
North:75.0000
West:-80.0000
East: 20.0000
South:0.0000
Keywords:
Structural geology; Applied geophysics; Atlantic Ocean; block structures; Cenozoic; diapirs; elastic waves; Europe; faults; geophysical methods; geophysical profiles; geophysical surveys; Iberian Peninsula; Leg 210; listric faults; marine environment; Mesozoic; Nazare Fault; North Atlantic; Northeast Atlantic; Ocean Drilling Program; passive margins; Peniche Basin; plate tectonics; Porto Basin; reactivation; reflection methods; rifting; salt tectonics; sea-floor spreading; seismic methods; seismic profiles; seismic stratigraphy; slope environment; Southern Europe; strike-slip faults; surveys; systems; tectonics; thickness; transfer faults; traveltime; two-dimensional models;
.
Copyright © 2006-2007 IODP-MI