Turmoil at Turrialba Volcano (Costa Rica): Degassing and eruptive processes inferred from high-frequency gas monitoring

被引:103
作者
Maarten de Moor, J. [1 ,2 ,3 ]
Aiuppa, A. [3 ,4 ]
Avard, G. [1 ]
Wehrmann, H. [5 ]
Dunbar, N. [6 ]
Muller, C. [1 ,7 ]
Tamburello, G. [3 ]
Giudice, G. [4 ]
Liuzzo, M. [4 ]
Moretti, R. [8 ]
Conde, V. [9 ]
Galle, B. [9 ]
机构
[1] Univ Nacl, Observ Vulcanol & Sismol Costa Rica, Heredia, Costa Rica
[2] Univ New Mexico, Dept Earth & Planetary Sci, Albuquerque, NM 87131 USA
[3] Univ Palermo, Dipartimento DiSTeM, Palermo, Italy
[4] Ist Nazl Geofis & Vulcanol, Sez Palermo, Palermo, Italy
[5] GEOMAR Helmholtz Ctr Ocean Res Kiel, Kiel, Germany
[6] New Mexico Bur Geol & Mineral Resources, Earth & Environm Sci Dept, Socorro, NM USA
[7] Univ Bristol, Sch Earth Sci, Bristol, Avon, England
[8] Seconda Univ Napoli, Dipartimento Ingn Civile Design Edilizia & Ambien, Naples, Italy
[9] Chalmers Univ Technol, Dept Earth & Space Sci, Gothenburg, Sweden
基金
欧洲研究理事会;
关键词
volcano monitoring; volcanic gases; explosive eruption; phreatic eruption; phreatomagmatic eruption; hydrothermal system; MAGMATIC-HYDROTHERMAL SYSTEM; SULFUR-DIOXIDE; NICARAGUA; GEOCHEMISTRY; INSIGHTS; EVOLUTION; REVEALS; MANTLE; FLUIDS;
D O I
10.1002/2016JB013150
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
Eruptive activity at Turrialba Volcano (Costa Rica) has escalated significantly since 2014, causing airport and school closures in the capital city of San Jose. Whether or not new magma is involved in the current unrest seems probable but remains a matter of debate as ash deposits are dominated by hydrothermal material. Here we use high-frequency gas monitoring to track the behavior of the volcano between 2014 and 2015 and to decipher magmatic versus hydrothermal contributions to the eruptions. Pulses of deeply derived CO2-rich gas (CO2/S-total>4.5) precede explosive activity, providing a clear precursor to eruptive periods that occurs up to 2weeks before eruptions, which are accompanied by shallowly derived sulfur-rich magmatic gas emissions. Degassing modeling suggests that the deep magmatic reservoir is similar to 8-10km deep, whereas the shallow magmatic gas source is at similar to 3-5km. Two cycles of degassing and eruption are observed, each attributed to pulses of magma ascending through the deep reservoir to shallow crustal levels. The magmatic degassing signals were overprinted by a fluid contribution from the shallow hydrothermal system, modifying the gas compositions, contributing volatiles to the emissions, and reflecting complex processes of scrubbing, displacement, and volatilization. H2S/SO2 varies over 2 orders of magnitude through the monitoring period and demonstrates that the first eruptive episode involved hydrothermal gases, whereas the second did not. Massive degassing (>3000T/d SO2 and H2S/SO2>1) followed, suggesting boiling off of the hydrothermal system. The gas emissions show a remarkable shift to purely magmatic composition (H2S/SO2<0.05) during the second eruptive period, reflecting the depletion of the hydrothermal system or the establishment of high-temperature conduits bypassing remnant hydrothermal reservoirs, and the transition from phreatic to phreatomagmatic eruptive activity.
引用
收藏
页码:5761 / 5775
页数:15
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