HR: 08:15h
AN: V21B-02 [PDF]
TI: Fractures, not Plumes, Have Controlled Major Seamount Volcanism in the Pacific over 170 Million Years
AU: * Natland, J H
EM: jnatland@rsmas.miami.edu
AF: RSMAS/MGG University of Miami, 4600 Rickenbacker Causeway, MIAMI, FL 33149 United States
AU: Winterer, E L
EM: jwinterer@ucsd.edu
AF: Geological Research Division, Scripps Institution of Oceanography, 9500 Gilman Drive, La Jolla, CA
92903-0220 United States
AB:
The distribution of guyots and atolls and large volcanic islands on the Pacific plate can be used to outline the likely
connection between stresses acting on the plate and the gradual development of large, linear volcanic chains over the past
170 Ma. We construe three general periods with different stress regimes in the history of the Pacific plate.
1) During the Jurassic and Early Cretaceous, the Pacific plate was surrounded by ridge segments and there were no major
stress alignments within it. Within-plate volcanism thus assumed the scattered arrangement for the condition of no tectonic
stress (1), and the large Magellan and Wake seamount clusters formed. Near the eastern boundaries of the plate, complex and
shifting patterns of ridge reorganization dictated formation of very long, splayed, near-axis ridges such as Horizon Guyot
and Necker Ridge.
2) At about 90 Ma, the growing middle-aged Pacific plate achieved its first persistent stress regime with the formation of
subduction boundaries along its western or northwestern margin. The plate was no longer static but began to move over the
asthenosphere and into the mantle. Subduction boundaries and the overall direction of subduction are uncertain, but this
imparted a general yet not fully stable component of tension across the plate, producing the NNW Gilbert-Marshall, Line and
Emperor Seamount ridges, generally orthogonal to the overall direction of least principal stress. The Line Island seamount
chain, being near ridge axes, sustained a variable stress regime. It thus has no age progression of rocks dated between
70-90 Ma (2), great width, and a dual orientations of ridges.
3) By 47 Ma, nearly half of the boundaries of the Pacific plate now were trenches spanning from the Aleutians to New Zealand.
In addition, northward migration of the Indian plate and Australia caught a major portion of the westerly moving Pacific
plate between the northeast corner of the Tonga Trench and the Aleutians. The plate could not shift laterally in response to
whatever was occurring along its eastern spreading boundaries. A very consistent and strong stress regime therefore
developed across the Pacific plate with a NNE direction of least principal stress. The change in stress orientation may have
taken up to 10 million years, during an interval marked by little or no volcanic productivity at the western end of the
Hawaiian chain. Since that time, the predominant alignment of both linear island chains and Puka Puka-type ridges, from the
Kodiak-Bowie chain in the Gulf of Alaska to the Louisville Ridge south of the Antarctic convergence, has been orthogonal to
this direction.
Development of large-volume persistent chains and shorter small-volume chains indicates patterns of differential stress in
the plate, variable fertility and geochemistry of the asthenosphere and/or shallow convective overturn of the asthenosphere
rather than the action of mantle plumes of different sizes and depths of origin. Tapping of enriched mantle by widespread
volcano clusters during the Mesozoic suggests the presence of a shallow asthenospheric source layer rather than multiple
narrow conduits.
(1) Hieronymus, C.F., and Bercovici, D. 2000. Earth Planet. Sci. Lett. 181, 539-554.
(2) Davis, A.S., Gray, L.B., Clague, D.A., and Hein, J.R., 2002 Geochem. Geophys. Geosyst. 3: 10.1029/2001GC0000190, 1-28.
DE: 8121 Dynamics, convection currents and mantle plumes
DE: 8157 Plate motions--past (3040)
DE: 8164 Stresses--crust and lithosphere
DE: 8414 Eruption mechanisms
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2003 Fall Meeting