Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.

Geochemical modeling using the basalt composition analyzed at the Vega 2 landing site indicates that intermediate to silicic liquids can be generated by fractional crystallization and equilibrium partial melting. Fractional crystallization modeling using variable pressures (0.01 GPa to 0.5 GPa) and...

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Main Author: J Gregory Shellnutt
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5870967?pdf=render
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spelling doaj-ea09a3ae3d3b451581ff946827ce4bdc2020-11-25T01:45:45ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-01133e019415510.1371/journal.pone.0194155Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.J Gregory ShellnuttGeochemical modeling using the basalt composition analyzed at the Vega 2 landing site indicates that intermediate to silicic liquids can be generated by fractional crystallization and equilibrium partial melting. Fractional crystallization modeling using variable pressures (0.01 GPa to 0.5 GPa) and relative oxidation states (FMQ 0 and FMQ -1) of either a wet (H2O = 0.5 wt%) or dry (H2O = 0 wt%) parental magma can yield silicic (SiO2 > 60 wt%) compositions that are similar to terrestrial ferroan rhyolite. Hydrous (H2O = 0.5 wt%) partial melting can yield intermediate (trachyandesite to andesite) to silicic (trachydacite) compositions at all pressures but requires relatively high temperatures (≥ 950°C) to generate the initial melt at intermediate to low pressure whereas at high pressure (0.5 GPa) the first melts will be generated at much lower temperatures (< 800°C). Anhydrous partial melt modeling yielded mafic (basaltic andesite) and alkaline compositions (trachybasalt) but the temperature required to produce the first liquid is very high (≥ 1130°C). Consequently, anhydrous partial melting is an unlikely process to generate derivative liquids. The modeling results indicate that, under certain conditions, the Vega 2 composition can generate silicic liquids that produce granitic and rhyolitic rocks. The implication is that silicic igneous rocks may form a small but important component of the northeast Aphrodite Terra.http://europepmc.org/articles/PMC5870967?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author J Gregory Shellnutt
spellingShingle J Gregory Shellnutt
Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.
PLoS ONE
author_facet J Gregory Shellnutt
author_sort J Gregory Shellnutt
title Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.
title_short Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.
title_full Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.
title_fullStr Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.
title_full_unstemmed Derivation of intermediate to silicic magma from the basalt analyzed at the Vega 2 landing site, Venus.
title_sort derivation of intermediate to silicic magma from the basalt analyzed at the vega 2 landing site, venus.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description Geochemical modeling using the basalt composition analyzed at the Vega 2 landing site indicates that intermediate to silicic liquids can be generated by fractional crystallization and equilibrium partial melting. Fractional crystallization modeling using variable pressures (0.01 GPa to 0.5 GPa) and relative oxidation states (FMQ 0 and FMQ -1) of either a wet (H2O = 0.5 wt%) or dry (H2O = 0 wt%) parental magma can yield silicic (SiO2 > 60 wt%) compositions that are similar to terrestrial ferroan rhyolite. Hydrous (H2O = 0.5 wt%) partial melting can yield intermediate (trachyandesite to andesite) to silicic (trachydacite) compositions at all pressures but requires relatively high temperatures (≥ 950°C) to generate the initial melt at intermediate to low pressure whereas at high pressure (0.5 GPa) the first melts will be generated at much lower temperatures (< 800°C). Anhydrous partial melt modeling yielded mafic (basaltic andesite) and alkaline compositions (trachybasalt) but the temperature required to produce the first liquid is very high (≥ 1130°C). Consequently, anhydrous partial melting is an unlikely process to generate derivative liquids. The modeling results indicate that, under certain conditions, the Vega 2 composition can generate silicic liquids that produce granitic and rhyolitic rocks. The implication is that silicic igneous rocks may form a small but important component of the northeast Aphrodite Terra.
url http://europepmc.org/articles/PMC5870967?pdf=render
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