HR: 1330h
AN: T12B-0453 INVITED [PDF]
TI: Massive Pyroclastic Eruptions Accompanied the Sector Collapse of Oahu and the Nu`uanu Landslide:
Petrological Evidence for a Submarine Directed Blast
AU: * Natland, J H
EM: jnatland@rsmas.miami.edu
AF: RSMAS/MGG University of Miami, 4600 Rickenbacker Causeway, Miami, FL 33149 United States
AU: Atlas, Z
EM: zatlas@rsmas.miami.edu
AF: RSMAS/MGG University of Miami, 4600 Rickenbacker Causeway, Miami, FL 33149 United States
AB:
During ODP Leg 200 in December, 2002, a series of thinly bedded volcaniclastic turbidites and silty muds interbedded with two
thicker and strongly indurated vitric tuffs was drilled at Site 1223 on the crest of the Hawaiian arch east of the island of
Oahu. The massive Nu`uanu landslide debris field, derived from a massive collapse of the eastern half of Oahu at about 2
Ma, lies in the flexural moat between the site and the island. The shipboard interpretation (1) was that the muds and silts
are typical turbidites derived by redeposition from beaches and nearshore benches, but that the tuffs represent the distal
portions of large submarine pyroclastic eruptions that may have attended the landslide. We report electron probe
microanalyses of basaltic glass, olivine, Cr-spinel, palagonite and secondary minerals in the tuffs supporting the shipboard
interpretation. In particular, the glass compositions from individual thin sections match precisely the range of compositions
obtained from numerous samples of coarse volcaniclastic breccia sampled from the steep flanks of landslide blocks in the
moat (2). This includes somewhat higher SiO$_{2}$ and lower total iron as FeO(T) at given MgO than similar basaltic glasses
from other Hawaiian volcanoes, a distinctive attribute of tholeiitic basalt from Oahu's Ko`olau volcano. Key attributes of
the glasses in the tuffs and the minerals in them are that they are poly-compositional and they are strongly differentiated,
with a range of compositions typical of those erupted from modern Hawaiian volcanic rift systems supplied by lateral diking
from central conduits. The finer-grained tuffs at Site 1223 thus are indeed a distal pyroclastic facies that seemingly
tapped much of the suddenly exposed, magma-inflated, deep flanking rift system of Ko`olau volcano. Over-steepening of the
NE flank of the volcano coupled with internal weakening provided by near saturation of its rift system with magma may have
triggered the landslide. This was almost immediately followed by massive submarine pyroclastic eruptions of magma mainly at
submarine levels in the rift that, accelerated by steep downslope descent, were directed all the way to the ENE in
rapidly-moving debris flows. These sorted themselves by size (mass) with the coarsest material plastering the sides of the
landslide blocks, and the finer grained material, mainly glass and olivine grains, reaching the crest of the Hawaiian arch.
The palagonite is compositionally-modified glass that probably formed by leaching in response to lateral migration of warm
hydrothermal fluids from beneath thicker and still hot proximal pyroclastic material that was abruptly deposited in the moat
to the west following the landslide.
(1)Shipboard Scientific Party, 2003. Site 1223. In Stephen, R.A., Kasahara, J., Acton, G.D., et al., Proc. ODP, Init. Rept.
200 [CD-ROM], College Station, TX (Ocean Drill. Prog), 1-159.
(2)Clague, D.A., Moore, J.G., and Davis, A.S., 2002. In Takahashi, E.,Lipman, P., Garcia, M.O., and Aramaki, S., (Eds.),
Geophys. Monog. 128: Washington (AGU), 279-296.
DE: 8414 Eruption mechanisms
DE: 8424 Hydrothermal systems (8135)
DE: 8429 Lava rheology and morphology
DE: 8499 General or miscellaneous
SC: Tectonophysics [T]
MN: 2003 Fall Meeting