4.7 Article

Long-term ground displacement observations using InSAR and GNSS at Piton de la Fournaise volcano between 2009 and 2014

期刊

REMOTE SENSING OF ENVIRONMENT
卷 194, 期 -, 页码 230-247

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.rse.2017.03.038

关键词

InSAR time series analysis; Piton de la Fournaise; Volcano ground displacement; InSAR artifact correction; Flank displacement

资金

  1. Agence Nationale de la Recherche (ANR) [ANR-10-EQPX-20]
  2. ASI [CSK 2080]
  3. DLR for TSX/TDX images [LAN 0237]
  4. Chinese Scholarship Council (CSC)

向作者/读者索取更多资源

Monitoring ground surface displacement of volcanoes over a long period of time helps improve understanding of the volcano structure, dynamics and mechanisms. In this paper, we investigate the spatio-temporal behavior of the long-term displacement field at Piton de la Fournaise volcano (12 Reunion Island) by means of X-band InSAR and GNSS time series analysis from 2009 to 2014. We propose a new correction approach based on principal component analysis to mitigate the long-wavelength artifact in the interferograms over the study area. Our results show that most of the volcanic edifice including the Central Cone, the Eastern Flank and recent lava flow fields was affected by varying degrees of ground motion. More importantly, a widespread sector (similar to 20 km(2)) affected by time-dependent downward and eastward motion was observed on the Eastern Flank of Piton de la Fournaise. The combined analysis of InSAR and GNSS time series and previous studies allows us to confirm that this large mobile sector on the Eastern Flank underwent deformation for at least 7 years following the end of the large March-April 2007 eruption, including a stage of transient strain from the end of eruption to February 2011, followed by a stage of steady-state strain until late 2014. Several possible origins, including a pre-existing structural discontinuity, summit stress associated with magmatism, and activated fault movement are explored to explain the observed widespread long-term seaward motion that is considered to be direct evidence of potential flank instability. (C) 2017 Elsevier Inc. All rights reserved.

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