We found a match
Your institution may have access to this item. Find your institution then sign in to continue.
- Title
Partitioning the Ongoing Extension of the Central Apennines (Italy): Fault Slip Rates and Bulk Deformation Rates From Geodetic and Stress Data.
- Authors
Carafa, M. M. C.; Galvani, A.; Di Naccio, D.; Kastelic, V.; Di Lorenzo, C.; Miccolis, S.; Sepe, V.; Pietrantonio, G.; Gizzi, C.; Massucci, A.; Valensise, G.; Bird, P.
- Abstract
We investigated whether the joint inversion of geodetic and stress direction data can constrain long‐term fault slip rates in the central Apennines, and ultimately how extension is partitioned among fault slip and bulk lithosphere permanent strain. Geodetic velocities are collected in the fault interseismic stage with steady secular deformation; thus, long‐term estimates can be derived with a model of elastically unloading seismogenic faults within a viscously deforming lithosphere. As the average spacing of permanent Global Navigation Satellite Systems (GNSS) stations is similar to the average length of seismogenic faults (25–35 km), if not larger, we decided to merge permanent and temporary GNSS measurements, resulting in a denser geodetic data set. Given that most normal faults in the Apennines have slip rates around or below 1 mm/a, and most campaign GNSS velocities carry similar uncertainties, simple local back slip models cannot be applied. More sophisticated modeling is required to extract reasonable bulk deformation rates and long‐term fault slip rates at signal‐to‐noise ratio of order unity. Given the spatial distribution of the GNSS network, we estimated the long‐term slip rate of seven major fault systems that are in satisfactory agreement with available geological slip rates. The resulting spatial distribution of bulk deformation rates locally fits short‐term transients; in other cases, they represent the currently unclear signature of tectonic processes like upper‐crustal viscoplastic deformation and aseismic slip, or indicate missing faults in the adopted database. We conclude that the time is ripe for determining fault slip rates using geodetic and stress direction data, particularly where fault activity rates are hard to determine geologically. Key Points: We perform a joint inversion of GNSS velocities and stress data to determine fault slip rates and bulk deformation rates in the central ApenninesComplex modeling can extract reasonable estimates of long‐term fault slip rates in satisfactory agreement with available geological estimatesModel fault slip rates may complement and constrain geological slip rates for any application in seismic hazard assessment
- Subjects
APENNINES (Italy); DEFORMATION of surfaces; GEOLOGIC faults; GLOBAL Positioning System; EARTHQUAKE hazard analysis; SPATIAL distribution (Quantum optics)
- Publication
Journal of Geophysical Research. Solid Earth, 2020, Vol 125, Issue 7, p1
- ISSN
2169-9313
- Publication type
Article
- DOI
10.1029/2019JB018956