HR: 1340h
AN: T53B-1317 [Abstracts]
TI: The Generation of Oceanic Lithosphere in an Embryonic Oceanic Crust : the Example of the Chenaillet Ophiolite in the Western Alps
AU: Masini, E
EM: emmanuel.masini486@orange.fr
AF: CGS-EOST, 1 rue Blessing, Strasbourg, 67084, France
AU: * Manatschal, G
EM: manatschal@illite.u-strasbg.fr
AF: CGS-EOST, 1 rue Blessing, Strasbourg, 67084, France
AU: Muntener, O
EM: othmar.muntener@unil.ch
AF: IMG-Lausanne, University of Lausanne, Lausanne, 1015, Switzerland
AB:
The Chenaillet Ophiolite exposed in the Franco-Italian Alps represents a well-preserved ocean-floor sequence
that was only weakly affected by later Alpine convergence. Based on the similarity between rock types and
structures reported from ultraslow spreading ridges and those observed in the Chenaillet Ophiolite, it may
represent a field analogue for slow to ultraslow spreading ridges such as the Gakkel Ridge or the Southwest
Indian Ridge.
Mapping of the Chenaillet Ophiolite enabled to identify an oceanic detachment fault that extends over a surface of
about 16 km2 capping exhumed mantle and gabbros onto which clastic sediments have been deposited. The
footwall of the detachment is formed by mafic and ultramafic rocks. The mantle rocks are strongly serpentinized
lherzolites and subordinate harzburgites and dunites. Microstructures reminiscent of impregnation, and cpx major
and trace element chemistry indicate that spinel peridotite is (locally) replaced by plagioclase-bearing
assemblages. Pyroxene thermometry on primary minerals indicates high temperatures of equilibration ( max
1200°C) for the mantle rocks. Gabbros range from troctolite and olivine-gabbros to Fe-Ti gabbros and show clear
evidence of syn-magmatic deformation, partially obliterated by retrograde amphibolite and low-grade
metamorphic conditions. In sections perpendicular to the detachment within the footwall, syn-tectonic gabbros
and serpentinized peridotites grade over some tens of meters into cataclasites that are capped by fault gouges.
Petro-structural investigations of the fault rocks reveal a syn-tectonic retrograde metamorphic evolution. Clasts of
dolerite within the fault zone suggest that detachment faulting was accompanied by magmatic activity.
Hydrothermal alteration is indicated by strong mineralogical and chemical modifications. Gabbro and
serpentinized peridotite, together with serpentinite cataclasites occur as clasts in tectono-sedimentary breccias
overlying directly the detachment fault.
Across the whole Chenaillet Ophiolite, volcanic rocks directly overlie either the detachment fault or the sediments.
In several places, N-S trending high-angle normal faults have been mapped. These faults truncate and displace
the detachment fault leading to small domino-like structures. The basins, limited by these high-angle faults, are
some hundreds to a few kilometres wide and few tens to some hundreds of meters deep. Because these high-
angle faults are sealed locally by basalts and obliterated by volcanic structures, we interpret them as oceanic
structures being active during the emplacement of the basalts. The alignment of porphyritic basaltic dykes
parallel to, and their increasing abundance towards the high-angle faults suggest that they may have served as
feeder channels for the overlying volcanic rocks.
The complex poly-phase tectonic and magmatic processes observed in the Chenaillet Ophiolite are reminiscent
of those reported from slow to ultraslow spreading ridges. The key result from our study is that mantle
exhumation along detachment faults is followed by syn-magmatic normal faulting resulting in the emplacement of
laterally variable, up to 300 meters thick massive lavas and pillow basalts covering the exhumed detachment
fault. This implies that off-axis processes are more important as previously assumed and that large-scale
detachment faults may be buried under massive volcanic sequences suggesting that detachment faulting is
presumably more common than suggested by dredging or morpho-structural investigations of ultra- to slow-
spreading oceanic crust.
DE: 3000 MARINE GEOLOGY AND GEOPHYSICS
DE: 3042 Ophiolites (8140)
DE: 8011 Kinematics of crustal and mantle deformation
DE: 8109 Continental tectonics: extensional (0905)
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
SC: Tectonophysics [T]
MN: 2007 Fall Meeting