Heat source of the 2014 phreatic eruption of Mount Ontake, Japan

被引:20
|
作者
Miyagi, Isoji [1 ]
Geshi, Nobuo [1 ]
Hamasaki, Satoshi [1 ]
Oikawa, Teruki [1 ]
Tomiya, Akihiko [1 ]
机构
[1] AIST, Geol Survey Japan, 1-1-1-7 Higashi, Tsukuba, Ibaraki 3058567, Japan
关键词
Phreatic eruption; Hydrothermal system; Shallow magmatic intrusion; Less-altered particles; Ash texture; MELTS; MT; ONTAKE; HYDROTHERMAL ERUPTIONS; HYDROVOLCANIC EXPLOSIONS; GEOTHERMAL SYSTEMS; IZU PENINSULA; NEW-ZEALAND; VOLCANO; VESUVIUS; MAGMA; GAS;
D O I
10.1007/s00445-020-1358-x
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
We present petrological evidence of the shallow magmatic processes that may have supplied heat and gas to the eruption of Mount Ontake, Japan, on 27 September 2014, which resulted in 63 fatalities. Ash from the eruption comprises primarily hydrothermally altered, white-toned rock fragments. However, the ash contains trace amounts (< 0.7 wt%) of vitreous less-altered particles (LAPs), which are only altered on their surfaces, suggesting rapid ascent through the hydrothermal system. The LAPs are classified into two categories: "glassy" and "crystalline." Glassy LAPs comprise high-silica rhyolitic glass (74-83 wt% SiO2) with rounded quartz, chalcedony-free vesicles, and reversely zoned plagioclase (cores = 47 mol% An; rims = 70 mol% An), indicating magma re-heating. Crystalline LAPs have a groundmass-like texture that suggests eutectic crystallization at shallow depths. Thermodynamic calculations indicate that the pre-eruptive temperatures of the glassy and crystalline LAPs were 700-1300 degrees C and 700 degrees C, respectively, and that the storage depth was < 4 km (pressure < 100 MPa). The observed petrological features suggest that the LAPs were sourced from a magma recently intruded at shallow depths. Although crustal deformation (i.e., the volume change associated with magmatic intrusion) was insignificant prior to the 2014 eruption, a clear signature of crustal deformation was observed in 2007, the source of which was located 3 km below the summit. We suggest that the magma that was intruded 3 km below the summit in 2007 supplied the heat and gas for the 2014 phreatic eruption.
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页数:17
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