HR: 0800h
AN: T31A-0487 [Abstracts]
TI: Evolution of the Mothra Hydrothermal Field, Endeavour Segment of the Juan de Fuca Ridge
AU: * Glickson, D
EM: glickson@u.washington.edu
AF: University of Washington School of Oceanography, Box 357940, Seattle, WA 98195
United States
AU: Kelley, D S
EM: kelley@ocean.washington.edu
AF: University of Washington School of Oceanography, Box 357940, Seattle, WA 98195
United States
AU: Delaney, J
EM: jdelaney@u.washington.edu
AF: University of Washington School of Oceanography, Box 357940, Seattle, WA 98195
United States
AB:
The Mothra Hydrothermal Field (MHF) is a 600 m long, high-temperature hydrothermal field. It is located 2.7 km south of the
Main Endeavour Field at the southern end of the central Endeavour Segment. Mothra is the most areally extensive field along
the Endeavour Segment, composed of six active sulfide clusters that are 40-200 m apart. Each cluster contains rare black
smokers (venting up to 319°C), numerous diffusely venting chimneys, and abundant extinct chimneys and sulfide talus.
From north to south, these clusters include Cauldron, Twin Peaks, Faulty Towers, Crab Basin, Cuchalainn, and Stonehenge. As
part of the Endeavour Integrated Study Site (ISS), the MHF is a site of intensive interdisciplinary studies focused on
linkages among geology, geochemistry, fluid chemistry, seismology, and microbiology.
Axial valley geology at MHF is structurally complex, consisting of lightly fissured flows that abut the walls and surround a
core of extensively fissured, collapsed terrain. Fissure abundance and distribution indicates that tectonism has been the
dominant process controlling growth of the axial graben. Past magmatic activity is shown by the 200 m long chain of collapse
basins between Crab Basin and Stonehenge, which may have held at least ~7500 m3 of lava. Assuming a flow thickness of
0.5 m, this amount of lava could cover over half the valley floor during a single volcanic event.
At a local scale, MHF clusters vary in size, activity, and underlying geology. They range in size from 400-1600 m2 and
consist of isolated chimneys and/or coalesced cockscomb arrays atop ramps of sulfide talus. In the northern part of the
field, Cauldron, Twin Peaks, Faulty Towers, and Crab Basin are located near the western valley wall, bounded by basalt talus
and a combination of collapsed sheet flows, intermixed lobate and sulfide, disrupted terrain, and isolated pillow ridges. The
southern clusters, Cuchalainn and Stonehenge, are associated with collapse basins in the central valley and bounded by
extensive lobate flows and disrupted terrain.
At all clusters, active chimneys stand within meters of extinct chimneys, suggesting that flow in the shallow subsurface is
both complex and transient. 1-2 m high mounds of sulfide talus and broken chimneys indicate that focused flow has been
concentrated at the clusters for long periods, while extinct sulfide deposits between clusters and in collapse basins
demonstrate that flow conduits have been rerouted and/or clogged by mineral precipitation. Two subsurface processes are
responsible for hydrothermal venting at the clusters: tapping of magmatic heat near the lava drainbacks and tectonic movement
along the steeply dipping, inward-facing normal faults at the western wall boundary. The interplay between these processes
and fluid flow is synthesized in an evolutionary model of hydrothermal development at Mothra.
DE: 8135 Hydrothermal systems (0450, 1034, 3017, 3616, 4832, 8424)
SC: Tectonophysics [T]
MN: Fall Meeting 2005