Magma intrusion process during pre-magmatic period (2010−2013) of Sinabung volcano as revealed by seismicity of volcano-tectonic and hybrid earthquakes

IF 2.4 3区 地球科学 Q2 GEOSCIENCES, MULTIDISCIPLINARY
Vico Luthfi Ipmawan , Masato Iguchi , Takahiro Ohkura , Takeshi Tameguri , Hetty Triastuty
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Abstract

Sinabung volcano in Indonesia reactivated, with a series of phreatic eruptions, in August and September 2010. These eruptions were followed by various types of magmatic eruption at the summit, including lava dome growth, pyroclastic density currents, lava flow, and vulcanian eruptions, starting in December 2013. Prior to the magmatic eruptions, Sinabung exhibited two sequences of phreatic eruption and an increase in the seismicity of volcanic earthquakes. This study clarifies the progress of magma intrusion during the pre-magmatic period based on the hypocenter distribution, waveform similarity, seismic moment, rupture length, and stress drop for volcano-tectonic (VT) and hybrid earthquakes. It was found that the hypocenters of VT earthquakes are distributed north and northwest of the summit at a depth range of 1–10 km below sea level. Deep seismicity (4–10 km) alternated with shallow seismicity (2–4 km). The last shallow seismicity, from July to mid-December 2013, was different from previous seismicity in terms of higher intensity, as determined from the seismic moment, a temporary increase in the rupture length, and the migration of hypocenters towards the summit. The seismicity of VT earthquakes was altered by a swarm of hybrid earthquakes in mid-December. The hybrid earthquakes were smaller, in terms of seismic moment (mostly <3 × 1010 Nm), than the VT earthquakes. Their hypocenters were concentrated in the shallowest depth range (−0.5 to 1.5 km below sea level) directly below the summit, their source process was repeatable (they could be grouped into six earthquake families), their dominant peak was in a low-frequency range (2.5–4.5 Hz), and they had a relatively low stress drop (<0.15 MPa). This suggests that the swarm of hybrid earthquakes was induced by a frequent repeated fracture of fluid-filled cracks due to the intrusion of magma up to directly below the summit. The transition of the earthquake family and the change in its source parameters, namely an increase in the stress drop prior to the appearance of a lava dome and then a slight decrease, may reflect a gradual change in internal pressure in the hypocentral zone through the magma intrusion process.

从火山构造地震和混合地震的震级揭示西那榜火山前岩浆期(2010-2013 年)的岩浆侵入过程
印度尼西亚的锡纳本火山于 2010 年 8 月和 9 月重新活跃起来,进行了一系列喷发。这些喷发之后,从 2013 年 12 月开始,山顶出现了各种岩浆喷发,包括熔岩穹丘增长、火成岩密度流、熔岩流和火山喷发。在岩浆喷发之前,西那榜火山曾出现过两次喷发,火山地震次数也有所增加。本研究根据火山构造地震(VT)和混合地震的低心点分布、波形相似性、地震力矩、断裂长度和应力降,阐明了岩浆侵入前期的进展情况。研究发现,VT 地震的震中分布在山顶北部和西北部,深度范围在海平面以下 1-10 千米。深层地震(4-10 千米)与浅层地震(2-4 千米)交替发生。最近一次浅层地震发生在 2013 年 7 月至 12 月中旬,与之前的地震不同,这次地震的烈度更高(根据地震力矩确定),断裂长度暂时增加,而且震源下心移向山顶。12 月中旬的混合地震群改变了 VT 地震的震级。就地震力矩而言,混合地震比 VT 地震小(大部分为 3 × 1010 牛米)。它们的震中集中在山顶正下方最浅的深度范围(海平面以下-0.5 至 1.5 千米),震源过程具有可重复性(可分为六个地震族),主峰处于低频范围(2.5-4.5 赫兹),应力降相对较低(<0.15 兆帕)。这表明,混合地震群是由于岩浆侵入到山顶正下方导致充满流体的裂缝频繁反复断裂而诱发的。地震族的过渡及其震源参数的变化,即熔岩穹顶出现前应力降增大,然后略有减小,可能反映了下中心区内部压力在岩浆侵入过程中的逐渐变化。
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来源期刊
CiteScore
5.90
自引率
13.80%
发文量
183
审稿时长
19.7 weeks
期刊介绍: An international research journal with focus on volcanic and geothermal processes and their impact on the environment and society. Submission of papers covering the following aspects of volcanology and geothermal research are encouraged: (1) Geological aspects of volcanic systems: volcano stratigraphy, structure and tectonic influence; eruptive history; evolution of volcanic landforms; eruption style and progress; dispersal patterns of lava and ash; analysis of real-time eruption observations. (2) Geochemical and petrological aspects of volcanic rocks: magma genesis and evolution; crystallization; volatile compositions, solubility, and degassing; volcanic petrography and textural analysis. (3) Hydrology, geochemistry and measurement of volcanic and hydrothermal fluids: volcanic gas emissions; fumaroles and springs; crater lakes; hydrothermal mineralization. (4) Geophysical aspects of volcanic systems: physical properties of volcanic rocks and magmas; heat flow studies; volcano seismology, geodesy and remote sensing. (5) Computational modeling and experimental simulation of magmatic and hydrothermal processes: eruption dynamics; magma transport and storage; plume dynamics and ash dispersal; lava flow dynamics; hydrothermal fluid flow; thermodynamics of aqueous fluids and melts. (6) Volcano hazard and risk research: hazard zonation methodology, development of forecasting tools; assessment techniques for vulnerability and impact.
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