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  1. 防災科研関係論文

Transient conduit permeability controlled by a shift between compactant shear and dilatant rupture at Unzen volcano (Japan)

https://nied-repo.bosai.go.jp/records/7603
https://nied-repo.bosai.go.jp/records/7603
fe8fb73d-2a18-4234-a1f2-ebb888efb8d4
Item type researchmap(1)
公開日 2026-08-24
タイトル
言語 en
タイトル Transient conduit permeability controlled by a shift between compactant shear and dilatant rupture at Unzen volcano (Japan)
著者 Yan Lavallée

× Yan Lavallée

en Yan Lavallée

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Takahiro Miwa

× Takahiro Miwa

en Takahiro Miwa

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James D. Ashworth

× James D. Ashworth

en James D. Ashworth

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Paul A. Wallace

× Paul A. Wallace

en Paul A. Wallace

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Jackie E. Kendrick

× Jackie E. Kendrick

en Jackie E. Kendrick

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Rebecca Coats

× Rebecca Coats

en Rebecca Coats

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Anthony Lamur

× Anthony Lamur

en Anthony Lamur

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Adrian Hornby

× Adrian Hornby

en Adrian Hornby

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Kai-Uwe Hess

× Kai-Uwe Hess

en Kai-Uwe Hess

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Takeshi Matsushima

× Takeshi Matsushima

en Takeshi Matsushima

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Setsuya Nakada

× Setsuya Nakada

en Setsuya Nakada

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Hiroshi Shimizu

× Hiroshi Shimizu

en Hiroshi Shimizu

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Bernhard Ruthensteiner

× Bernhard Ruthensteiner

en Bernhard Ruthensteiner

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Hugh Tuffen

× Hugh Tuffen

en Hugh Tuffen

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内容記述タイプ Other
内容記述 Abstract. The permeability of magma in shallow volcanic conduits controls the fluid flow and pore pressure development that regulates gas emissions and the style of volcanic eruptions. The architecture of the permeable porous structure is subject to changes as magma deforms and outgasses during ascent. Here, we present a high-resolution study of the permeability distribution across two conduit shear zones (marginal and central) developed in the dacitic spine that extruded towards the closing stages of the 1991–1995 eruption at Unzen volcano, Japan. The marginal shear zone is approximately 3.2 m wide and exhibits a 2-m wide, moderate shear zone with porosity and permeability similar to the conduit core, transitioning into a ~1-m wide, highly-sheared region with relatively low porosity and permeability, and an outer 20-cm wide cataclastic fault zone. The low porosity, highly-sheared rock further exhibits an anisotropic permeability network with slightly higher permeability along the shear plane (parallel to the conduit margin) and is locally overprinted by oblique dilational Riedel fractures. The central shear zone is defined by a 3-m long by ~9-cm wide fracture ending bluntly and bordered by a 15–40 cm wide damage zone with an increased permeability of ~3 orders of magnitude; directional permeability and resultant anisotropy could not be measured from this exposure. We interpret the permeability and porosity of the marginal shear zone to reflect the evolution of compactional (i.e., ductile) shear during ascent up to the point of rupture, estimated by Umakoshi et al. (2008), at ~500 m depth. At this point the compactional shear zone would have been locally overprinted by brittle rupture, promoting the development of a shear fault and dilational Riedel fractures during repeating phases of increased magma ascent rate, enhancing anisotropic permeability that channels fluid flow into, and along, the conduit margin. In contrast, we interpret the central shear zone as a shallow, late-stage dilational structure, which partially tore the spine core with slight displacement. We explore constraints from monitored seismicity and stick-slip behaviour to evaluate the rheological controls, which accompanied the upward shift from compactional toward dilational shear as magma approached the surface, and discuss their importance in controlling the permeability development of magma evolving from overall ductile to increasingly brittle behaviour during ascent and eruption.
言語 en
書誌情報
発行日 2021-10-20
出版者
言語 en
出版者 Copernicus GmbH
DOI
関連識別子 10.5194/se-2021-127
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