Analyzing Volcanic, Tectonic, and Environmental Influences on the Seismic Velocity from 25 Years of Data at Mount St. Helens

Peter Makus, M. Denolle, C. Sens‐Schönfelder, Manuela Kopfli, Frederik Tilmann
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Abstract

We estimate changes in the seismic velocity (dv/v) from 25 years of ambient seismic noise recorded at Mount St. Helens (MSH). At MSH, the availability of seismic stations changes frequently due to station failure and the installation of new stations. Therefore, it is difficult to combine relative measurements that do not span the same time and space. We tackle this challenge by developing a spatial imaging algorithm to normalize all ∼1400 dv/v time series onto one spatial grid. Thereby, we obtain time-dependent velocity change maps of the MSH region, which we analyze with the help of auxiliary observations, such as ground position (i.e., Global Navigation Satellite System [GNSS]), weather data, environmental observations, and regional seismicity. In the dv/v time series, we find a variety of dynamics caused by volcanic, tectonic, and environmental forcing. With the initiation of MSH’s 2004–2008 volcanic crisis, dv/v exhibits a significant increase, which we link to the deflation of the volcanic plumbing system, also observed on GNSS data. Between 2013 and 2018, when seismicity levels are elevated, we find lower velocities at depth. This phase is followed by an episode of relative quiescence, accompanied by significant dv/v increases close to the St. Helens seismic zone. We suggest a reinflation of the magmatic plumbing system after MSH’s 2004–2008 eruption lasting until about 2017. Afterward, the magmatic activity in the subsurface reduces, thereby decreasing pressure and increasing the seismic velocity. Fluctuating groundwater levels may dominate the seasonal cycles in the dv/v time series. A contrasting seasonal response between the high-elevation edifice and foothill valleys may indicate that surface freezing inhibits subsurface groundwater infiltration at higher altitudes.
从圣海伦火山 25 年的数据中分析火山、构造和环境对地震速度的影响
我们从圣海伦山(MSH)记录的 25 年环境地震噪声中估算出地震速度(dv/v)的变化。在圣海伦山,由于台站故障和新台站的安装,地震台站的可用性经常发生变化。因此,很难将时间和空间跨度不同的相对测量结果结合起来。为解决这一难题,我们开发了一种空间成像算法,将所有 ∼1400 dv/v 时间序列归一化到一个空间网格上。因此,我们获得了 MSH 区域随时间变化的速度变化图,并借助辅助观测数据,如地面位置(即全球导航卫星系统 [GNSS])、气象数据、环境观测数据和区域地震活动进行分析。在 dv/v 时间序列中,我们发现了由火山、构造和环境作用力引起的各种动态变化。随着 MSH 2004-2008 年火山危机的爆发,dv/v 出现了显著增加,我们将其与火山管道系统的放空联系起来,GNSS 数据也观察到了这一点。在 2013 年至 2018 年期间,当地震水平升高时,我们发现深度的速度较低。在这一阶段之后,圣海伦地震带附近出现了一段相对静止的时期,同时 dv/v 显著增加。我们认为,在 2004-2008 年 MSH 火山喷发之后,岩浆管道系统重新膨胀,一直持续到 2017 年左右。之后,地下岩浆活动减少,从而降低了压力,提高了地震速度。地下水位的波动可能主导了 dv/v 时间序列的季节周期。高海拔山顶和山麓谷地之间的季节性反差可能表明,地表冻结抑制了高海拔地区地下水的渗透。
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