Extensive CO2 degassing in the upper mantle beneath oceanic basaltic volcanoes: First insights from Piton de la Fournaise volcano (La Reunion Island)

被引:46
作者
Boudoire, G. [1 ,2 ]
Rizzo, A. L. [3 ,4 ]
Di Muro, A. [2 ,5 ]
Grassa, F. [3 ]
Liuzzo, M. [3 ]
机构
[1] Univ La Reunion, Sorbonne Paris Cite, Lab Geosci Reunion, IPGP,CNRS,UMR 7154, F-97715 St Denis, France
[2] Univ Paris Diderot, Sorbonne Paris Cite, OVPF, IPGP,CNRS,UMR 7154, Bourg Murat, France
[3] Ist Nazl Geofis & Vulcanol, Sez Palermo, Via Ugo La Malfa 153, I-90146 Palermo, Italy
[4] Univ Ferrara, Dipartimento Fis & Sci Terra, Ferrara, Italy
[5] Univ Paris Diderot, Sorbonne Paris Cite, IPGP, CNRS,UMR 7154, F-75005 Paris, France
关键词
Fluid inclusions; Mantle; delta C-13; CO2; Noble gases; Degassing; Underplating layer; NOBLE-GAS SOLUBILITIES; DEEP CARBON EMISSIONS; SILICATE MELTS; ARGON SOLUBILITY; MAGMA TRANSPORT; PLUMBING SYSTEM; CRUSTAL CONTAMINATION; ISOTOPIC COMPOSITION; LIQUID COMPOSITION; RE-EQUILIBRATION;
D O I
10.1016/j.gca.2018.06.004
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
In spite of its major role on the atmospheric volatile budget, climate, and tracking magmatic transfers, mantle (CO2) degassing below volcanoes is still poorly understood. Most of the studies on this scientific topic lack constraint on the CO2 concentration of primary melts, the depth at which it starts degassing, and the extent of this process in the mantle. In this study of Piton de la Fournaise (PdF) volcano, we couple geochemistry of low solubility gases (He, Ar, CO2, delta C-13) in fluid inclusions (FIs) and petro-chemistry of magmatic inclusions on a set of olivine and clinopyroxene crystals from basalts and ultramafic enclaves. We constrain basaltic melt degassing at PdF over a large pressure range (from 4 GPa up to the surface). Based on CO2-He-Ar systematics, we infer that extensive degassing occurs already in the upper mantle (4-1 GPa) and it is favored by multiple steps of magma ponding and differentiation up to the mantle-crust underplating depth (0.4 GPa). Thus, we calculate that basaltic melts injected at crustal depth (<0.4 GPa) have already exsolved similar to 94 +/- 5 wt% of their primary CO2 content in accordance with (1) the evolved and degassed signature of erupted lavas and (2) the weakness of inter-eruptive gas emissions in the active area bearing low-temperature vapor-dominated fumaroles. Our results at PdF strongly contrast with previous findings on other ocean island volcanoes having a higher magma production rate and faster magma ascent, like Kilauea (Hawaii), whose basalts experience only limited extent of differentiation and degassing. We propose that extensive degassing already in the upper mantle can be a common process for many volcanoes of the Earth and is tightly dependent on the dynamics of magma ascent and differentiation across multiple ponding zones. Based on the modeling developed in this study, we propose a new estimation of the CO2 content (up to 3.5 +/- 1.4 wt%) in primary basaltic melts at PdF leading to a carbon content in the mantle source of 716 +/- 525 ppm. This new estimation is considerably higher than the few previous calculations performed for Ocean Island Basalts (OIB) systems. Another implication of this work involves the possible bias between the delta C-13 measured in volcanic gas emissions (<-6 parts per thousand) and that of primary vapour phase (-0.5 +/- 0.5%c) constrained in this work. This bias would confirm the early step of extensive CO2 degassing within the upper mantle and could represent an alternative for the hypotheses of carbon recycling or mantle heterogeneity in support of the low delta C-13 signature of some mantle reservoirs. This study bears significant implications on the global budget of volcanic volatile emissions, chiefly regarding the contribution of past and future emissions of volcanic CO2 to climate dynamics, and on volcanic gas monitoring. (C) 2018 Elsevier Ltd. All rights reserved.
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页码:376 / 401
页数:26
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