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2021年塔约加泰火山喷发期间(加那利群岛拉帕尔马岛)岩浆通过弯曲扭曲岩脉上升的大地测量成像。

Geodetic imaging of magma ascent through a bent and twisted dike during the Tajogaite eruption of 2021 (La Palma, Canary Islands).

作者信息

Przeor Monika, Castaldo Raffaele, D'Auria Luca, Pepe Antonio, Pepe Susi, Sagiya Takeshi, Solaro Giuseppe, Tizzani Pietro, Barrancos Martínez José, Pérez Nemesio

机构信息

Instituto Volcanológico de Canarias (INVOLCAN), Granadilla de Abona, Tenerife, Canary Islands, Spain.

Instituto Tecnológico y de Energías Renovables (ITER), Granadilla de Abona, Tenerife, Canary Islands, Spain.

出版信息

Sci Rep. 2024 Jan 2;14(1):212. doi: 10.1038/s41598-023-50982-9.

Abstract

On Sept. 19th, 2021, the largest historical eruption on the island of La Palma began, which had a significant scientific, social, and economic impact. The 2021 Tajogaite eruption was characterised by short precursors, lasting only 8 days. The seismicity started on Sept. 11th with a westward and upward migration of hypocenters. Permanent GNSS stations started recording deformation on Sept. 12th on the island's western side, which reached more than 15 cm just before the eruption. After the eruption onset, the ground deformation increased, reaching a maximum on Sept. 22nd and showing a nearly steady deflation trend in the following months. To better understand the dynamics of the eruption, we exploited a joint dataset of GNSS and Sentinel-1 SBAS time series along both ascending and descending orbits. To obtain the geometry of the causative source of the ground deformation, we combined the result of a preliminary non-linear inversion and the precise location of the seismicity. The resulting geometry of the source is that of a twisted dike bending eastward. We performed inverse modelling to obtain the spatiotemporal kinematics of the opening function of the dike. The forward modelling has been realised using a 3D finite-element approach considering the island's topography. Our findings reveal a close correspondence between the magmatic intrusion and pre-eruptive seismicity. The ascent of the magma occurred along two branches, and the rheology of a previously identified ductile layer strongly affected the magma propagation process. Finally, we found evidence of an early shallow deformation, which we interpret as the effect of ascending hydrothermal fluids. Our findings highlight the need for advanced modelling to understand pre-eruptive processes in basaltic volcanoes.

摘要

2021年9月19日,拉帕尔马岛发生了历史上规模最大的火山喷发,此次喷发产生了重大的科学、社会和经济影响。2021年塔约加伊特火山喷发的特点是前兆期短,仅持续了8天。地震活动于9月11日开始,震源向西和向上迁移。9月12日,永久性全球导航卫星系统(GNSS)站开始在该岛西侧记录变形情况,在火山喷发前变形量达到了15厘米以上。火山喷发开始后,地面变形加剧,9月22日达到最大值,在随后的几个月里呈现出近乎稳定的下沉趋势。为了更好地理解火山喷发的动力学过程,我们利用了沿升轨和降轨的GNSS和哨兵1号小基线集合成孔径雷达干涉测量(SBAS)时间序列的联合数据集。为了获取地面变形的成因源几何形状,我们将初步非线性反演结果与地震活动的精确位置相结合。所得的源几何形状是一个向东弯曲的扭曲岩脉。我们进行了反演建模以获得岩脉张开函数的时空运动学。正向建模是使用考虑该岛地形的三维有限元方法实现的。我们的研究结果揭示了岩浆侵入与喷发前地震活动之间的密切对应关系。岩浆沿着两个分支上升,先前确定的韧性层的流变学强烈影响了岩浆的传播过程。最后,我们发现了早期浅层变形的证据,我们将其解释为上升的热液流体的作用。我们的研究结果强调了进行先进建模以理解玄武质火山喷发前过程的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a821/10761690/64a4d14e5ea4/41598_2023_50982_Fig1_HTML.jpg

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