SEGJ14th

講演情報

Poster session (core time)

Poster

2021年10月19日(火) 15:30 〜 17:30 Area 01 (Remo )

[DM-P-01] Attenuation characteristics of Hachijojima volcano using twofold spectral ratio method

*Utako Watanabe1, Hiroyuki Azuma1, Yoshiya Oda1 (1. Tokyo Metropolitan Univ. (Japan))

In order to interpret volcanic phenomena correctly, it is necessary to understand subsurface structure. Hachijojima volacano, the target of this study, is an active volcano being monitored 24 hours a day by JMA. However, the subsurface structure of Hachijojima volacano has not been clarified with sufficient resolution. The attenuation characteristics are known to be highly correlated with the properties of magma. In this study, therefore, we aim to estimate the attenuation characteristics of Hachijojima volcano by using twofold spectral ratio method.

Twofold spectral ratio method removes the source and site amplification characteristics by using multiple earthquake records observed at multiple stations, and extracts path characteristics, attenuation characteristics. The attenuation characteristics estimated by twofold spectral ratio method are average over the entire ray-path. In this study, we estimate the attenuation characteristics between seismic stations by selecting distant earthquakes whose ray-paths are almost same. Earthquake data observed by a dense seismic network of 46 stations in Hachijojima Island during the period 2019 September to 2020 March are used. In this study, we calculated the twofold spectral ratios for 13 station pairs in Nishiyama volcano and 3 pairs of stations in Higashiyama volcano.

The low seismic attenuation area is located in the same area as dike intrusion model (Kimata, et al., 2004) and the high seismic attenuation area is situated in the area of tuff cones and tuff rings formed by phreatomagmatic explosions (Sugihara and Shimada, 1998).

The high seismic attenuation regions in Nishiyama and Higashiyama volcanos roughly correspond to the low-velocity region of the velocity structure of Hagiwara and Watanabe (2019).

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