HR: 0800h
AN: T41E-1351 [Abstracts]
TI: Melting and Mantle Flow at Oblique Ultraslow-Spreading Ridges
AU: * Barry, J L
EM: jbarry1@swarthmore.edu
AF: Woods Hole Oceanographic Summer Student Fellowship Program, Dept of Geology and Geophysics, Woods Hole,
MA 02543
United States
AU: Behn, M D
EM: mbehn@whoi.edu
AF: Woods Hole Oceanographic Institution, Dept. of Geology and Geophysics, Woods Hole, MA 02543
United States
AU: Montesi, L G
EM: lmontesi@whoi.edu
AF: Woods Hole Oceanographic Institution, Dept. of Geology and Geophysics, Woods Hole, MA 02543
United States
AB:
Ultraslow-spreading ridges are a unique endmember of the mid-ocean ridge
spreading system. Ultraslow-spreading ridges lack transform faults and often
form segments oriented at an oblique angle to the overall spreading direction.
These oblique segments are characterized by anomalously thin crust compared to
predictions from 2-D models for either passive or buoyant mantle flow based on
the full spreading rate, suggesting that the rate of mantle upwelling is
inhibited by the oblique ridge geometry. In this study, we model mantle flow and thermal structure at oblique
ultraslow-spreading ridges using a three-dimensional finite element model. The model geometry consists of an oblique segment
bounded by two orthogonal segments and we account for the effects of passive flow, a simple melting law, and melt migration
along the 1200 °C isotherm surface. The models predict that temperature, upwelling rate, and crustal thickness along an
oblique spreading ridge are all functions of only the portion of the spreading rate perpendicular to the ridge axis.
Comparing our results to the 9-14°E oblique supersegment of the southwest
Indian ridge (SWIR), we find that crustal thickness along a segment oriented
60° relative to the spreading direction is predicted to be ~2.5 km lower than
for an orthogonal segment. Including the effects of melt migration towards the
bounding orthogonal segment yields a further reduction in crustal thickness with
a maximum difference of ~2.75 km between the center of the oblique segment and
the bounding orthogonal segments. Intriguingly, the melt migration model also predicts crustal thickness anomalies of
~0.25 km at either end of the orthogonal segment. These
crustal thickness anomalies coincide with the locations of the magmatic
Narrowgate segment and Joseph Mayes seamount at the ends of the oblique
supersegment of the SWIR. However, the amplitude of the predicted crustal
thickness anomalies is significantly smaller than is observed at the SWIR.
Further work is needed to determine whether including the effects of buoyancy,
temperature-dependent viscosity, and along-axis flow may enhance the magnitude
of these segment bounding crustal thickness anomalies to the proportions
observed along the SWIR.
DE: 3035 Midocean ridge processes
DE: 3039 Oceanic transform and fracture zone processes
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8416 Mid-oceanic ridge processes (1032, 3614)
SC: Tectonophysics [T]
MN: Fall Meeting 2005