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Data Processing Methods for 3D Seismic Imaging of Subsurface Volcanoes: Applications to the Tarim Flood Basalt
Published on: August 7, 2017
Modern arc-like water content in the source of 3.1-billion-year-old volcanic rocks
Eric D Vandenburg1,2,3, Oliver Nebel4,5, R Hugh Smithies6,7
1Australian Critical Minerals Research Centre, Department of Earth Sciences, School of Physics, Chemistry and Earth Sciences, Adelaide University, Adelaide, SA, Australia. eric.vandenburg@adelaide.edu.au.
Abstract:
Whether Archean arc-like volcanism reflects subduction remains debated. We present high-resolution geochemical data from a well-preserved 3.13-3.10 Ga arc-like volcanic succession in Australia's Pilbara Craton, a rare Archean analog of modern arc volcanism retaining fluid-mobile element concentrations consistent with primary magmatic values. The sequence records three primitive lava series typical of modern arcs: tholeiitic, calc-alkaline, and the oldest stratigraphically extensive genuine boninites. Geochemical modelling shows this melt diversity requires at least two mantle sources with distinct depletion histories. The mantle H2O required for fluid-assisted melting to produce these lavas substantially exceeds primitive mantle, approaching the H2O-saturated solidus of modern mantle wedges. We infer hydrous melting was triggered by dripduction, the short-lived inclined foundering of hydrated lithosphere without laterally continuous plate boundaries, in an off-plateau setting. Dripduction locally recycled surface water and generated arc-like magmas without self-sustained plate tectonics, possibly promoting mantle-ocean-atmosphere volatile exchange during the Archean.
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