HR: 08:45h
AN: V31A-04 [Abstracts]
TI: Gigantic self-confined pahoehoe inflated lava flows in Argentina
AU: * Pasquare', G
EM: giorgio.pasquare@unimi.it
AF: Dipartimento di Scienze della Terra, Universita' di Milano, Via Mangiagalli 34, Milano,
20133, Italy
AU: Bistacchi, A
EM: andrea.bistacchi@unimib.it
AF: Dipartimento di Geologia, Universita' di Milano Bicocca, Piazza della Scienza 4, Milano,
20126, Italy
AB:
The largest lava flows on Earth are pahoehoe basalts emplaced by inflation, a process which can change lava
lobes initially a few decimetres thick into large lava sheets several metres thick. Inflation involves the initial
formation of a thin, solidified, viscoelastic crust, under which liquid lava is continually added. This thermally
efficient endogenous growth process explains the spread of huge volumes of lava over large, almost flat areas,
as in the sheet flows which characterise the distal portions of Hawaiian volcanoes or some continental flood
basalt provinces. Long, narrow, inflated pahoehoe flows have occasionally been described, either emplaced
along pre-existing river channels or confined within topographic barriers. In this contribution we present
previously unknown inflated pahoehoe lava flows following very long, narrow pathways over an almost flat
surface, with no topographic confinement. Lava, which erupted in Late Quaternary times from the eastern tip of a
60 km long volcanic fissure in Argentina, formed several discrete flows extending as far as 180 km from the
source. This fissure was characterized by a long-lasting and complex activity. Alkali-basaltic lava flows were
emitted at the two extremities of the fissure system. In the intermediate section of the fissure, the Payun Matru, a
great trachitic composite volcano, developed, giving rise to a large caldera which produced large pyroclastic
flows. Alkali-basalts predate and postdate the trachitic activity, in fact at the end of the trachitic activity, new basaltic
lava flows (mainly aa) were emitted from both ends of the fissure. We studied in details the youngest of the
gigantic flows (Pampas Onduladas lava flow), which progressively develops through differing thermally-efficient
flow mechanisms. The flow created a large shield volcanic structure at the eastern tip of the E-W fissure and
spread to the E forming a very large and thick inflated pahoehoe sheet flow. Leaving the flanks of the volcano, the
flow spreads all over a large tectonic depression, forming a large inflated pahoehoe sheet flow. The flow
continues downstream, always showing typical inflation features, forming a very long and narrow tongue,
developed over the nearly flat Pampa plain (gradient 0.5%) with an average width of 3 km and a length of 120 km.
A peculiar feature of this portion of the flow, apart from its exceptional length, is the very low width-to-length ratio.
This is even more surprising if we consider that no pre-existing topographic feature (e.g. river channel, etc.) is
responsible for this behaviour, which appears to be only the result of some kind of self-confinement mechanism.
The structural, morphological and eruptive complexities of this volcanic structure are exceptional by themselves
since there are no similar features both in the Andes calcalkaline volcanism or in the Patagonian basaltic
plateaus and they pose problems even in the nomenclatural definition of the Payun Matru as an individual
volcanic construct. Moreover, understanding the mechanisms responsible for the exceptional behaviour of this
lava flow may provide new constraints on the physics of inflated pahoehoe flow emplacement. Results in this
direction may also offer useful proxies for interpreting volcanic processes on terrestrial planets such as Mars and
Venus, on which individual lava flows of similar shape and dimensions have been observed.
DE: 8414 Eruption mechanisms and flow emplacement
DE: 8425 Effusive volcanism
DE: 8429 Lava rheology and morphology
DE: 8450 Planetary volcanism (5480, 6063, 8148)
DE: 8485 Remote sensing of volcanoes
SC: Volcanology, Geochemistry, and Petrology [V]
MN: 2007 Joint Assembly