Javascript must be enabled to continue!
Estimating surface displacement in the Hanshin area, Japan, by PS-InSAR analysis using satellite Sentinel-1 data
View through CrossRef
<p>The 2018 northern Osaka earthquake with a magnitude 6.1 earthquake struck on June 18, 2018 in northern Osaka, causing enormous damage. SAR interferometry using satellite synthetic aperture radar (SAR) data can detect surface displacement distribution over a wide area and is effective for observing surface displacement during an earthquake. On the other hand, it is also important to observe the tendency of long-term surface displacement around active faults on a yearly basis in order to monitor the deformation at and around active faults. In this study, we used persistent scatter SAR interferometry (PS-InSAR) to clarify the recent surface displacement including before and after the 2018 northern Osaka earthquake near the Arima-Takatsuki Fault Zone and the Mt. Rokko active segment, near the epicenter of the earthquake. PS-InSAR analysis is a method that analyzes coherent pixels only, and can extract surface displacements with less noise than the conventional two-pass SAR interferometry. By using Sentinel-1 data, we expect to understand a long-term surface displacement and temporal changes in displacement pattern by comparing with the results using other satellites in previous studies. As a result of our analysis, we found that (i) ground subsidence occurred near the Mt. Rokko active segment, (ii) subsidence or eastward displacement occurred in the eastern part of the Takarazuka GNSS station, (iii) surface displacement in the wedge-shaped area located between the Arima-Takatsuki Fault Zone and the Mt. Rokko active segment is suggested to be caused by groundwater level changes, (iv) groundwater level changes may have caused surface displacement considered to be uplift in the wide area between the Ikoma Fault Zone and Uemachi Fault Zone, and (v) slip of the source fault may have caused surface displacement around the epicenter of the 2018 northern Osaka earthquake. Furthermore, we validated the estimated surface displacements by comparison with GNSS measurements and previous studies. These results suggest that surface displacement near the Arima-Takatsuki fault zone was caused by the 2018 northern Osaka earthquake. In order to reveal the mechanism of surface displacement in the vicinity of the fault, it is necessary to continue to monitor the surface displacement in this area using time-series SAR interferometry.</p><p>&#160;</p><p>&#160;</p><p>We acknowledge Sentinel-1 data provided from the European Space Agency (ESA) based on the open data policy.</p>
Title: Estimating surface displacement in the Hanshin area, Japan, by PS-InSAR analysis using satellite Sentinel-1 data
Description:
<p>The 2018 northern Osaka earthquake with a magnitude 6.
1 earthquake struck on June 18, 2018 in northern Osaka, causing enormous damage.
SAR interferometry using satellite synthetic aperture radar (SAR) data can detect surface displacement distribution over a wide area and is effective for observing surface displacement during an earthquake.
On the other hand, it is also important to observe the tendency of long-term surface displacement around active faults on a yearly basis in order to monitor the deformation at and around active faults.
In this study, we used persistent scatter SAR interferometry (PS-InSAR) to clarify the recent surface displacement including before and after the 2018 northern Osaka earthquake near the Arima-Takatsuki Fault Zone and the Mt.
Rokko active segment, near the epicenter of the earthquake.
PS-InSAR analysis is a method that analyzes coherent pixels only, and can extract surface displacements with less noise than the conventional two-pass SAR interferometry.
By using Sentinel-1 data, we expect to understand a long-term surface displacement and temporal changes in displacement pattern by comparing with the results using other satellites in previous studies.
As a result of our analysis, we found that (i) ground subsidence occurred near the Mt.
Rokko active segment, (ii) subsidence or eastward displacement occurred in the eastern part of the Takarazuka GNSS station, (iii) surface displacement in the wedge-shaped area located between the Arima-Takatsuki Fault Zone and the Mt.
Rokko active segment is suggested to be caused by groundwater level changes, (iv) groundwater level changes may have caused surface displacement considered to be uplift in the wide area between the Ikoma Fault Zone and Uemachi Fault Zone, and (v) slip of the source fault may have caused surface displacement around the epicenter of the 2018 northern Osaka earthquake.
Furthermore, we validated the estimated surface displacements by comparison with GNSS measurements and previous studies.
These results suggest that surface displacement near the Arima-Takatsuki fault zone was caused by the 2018 northern Osaka earthquake.
In order to reveal the mechanism of surface displacement in the vicinity of the fault, it is necessary to continue to monitor the surface displacement in this area using time-series SAR interferometry.
</p><p>&#160;</p><p>&#160;</p><p>We acknowledge Sentinel-1 data provided from the European Space Agency (ESA) based on the open data policy.
</p>.
Related Results
Spatio-temporal quality metrics for satellite SAR interferometric data
Spatio-temporal quality metrics for satellite SAR interferometric data
(English) The availability of RADAR images for monitoring Earth’s surface and its changes over time prompt the development of several interferometric SAR (InSAR) algorithms and met...
Operational monitoring of our hazardous planet with Sentinel-1
Operational monitoring of our hazardous planet with Sentinel-1
<p>The European Commission&#8217;s Sentinel-1 constellation, operated by ESA, has been a game changer for operational monitoring of our hazardous planet. When...
Difficulties arising when PS-InSAR displacement measurements are compared to results from geomechanical and groundwater flow computations.
Difficulties arising when PS-InSAR displacement measurements are compared to results from geomechanical and groundwater flow computations.
Interferometric Synthetic Aperture Radar (InSAR) technology has been used to detect the location and magnitude of ground deformation for the past 30 years, providing cost-effective...
Geometry and Precision in Sentinel-1 Processing for Interferometric Applications
Geometry and Precision in Sentinel-1 Processing for Interferometric Applications
Géométrie et Précision dans le Traitement de Sentinel-1 pour des Applications Interférométriques
Cette thèse explore les techniques avancées de traitement des donné...
Mitigating Geohazard Risk through Synergistic, Multi-Band InSAR Monitoring
Mitigating Geohazard Risk through Synergistic, Multi-Band InSAR Monitoring
Geohazards pose a significant and growing threat to human populations and critical infrastructure worldwide. The impact of these hazards is further exacerbated by climate change, w...
A Sportsworld Transforming
A Sportsworld Transforming
The principal fieldwork for this book was conducted in the late 1990s and early 2000s. Has the Hanshin Tigers sportsworld changed since then? This final chapter concludes that it h...
Monitoring of Subsidence along Jingjin Inter-City Railway with High-Resolution TerraSAR-X MT-InSAR Analysis
Monitoring of Subsidence along Jingjin Inter-City Railway with High-Resolution TerraSAR-X MT-InSAR Analysis
Synthetic Aperture Radar Interferometry (InSAR), widely applied for the monitoring of land subsidence, has the advantage of high accuracy and wide coverage. High-resolution SAR dat...
Multi-Resolution Ocean Color roducts to support the Copernicus Marine High-Resolution Coastal Service 
Multi-Resolution Ocean Color roducts to support the Copernicus Marine High-Resolution Coastal Service 
High-quality satellite-based ocean colour products can provide valuable support and insights in the management and monitoring of coastal ecosystems. Today’s availability ...

