H2020Individual fellowship2019–2021

SLIP · exhumed foSsiL shear zones: a key to Investigate Present middle-crustal seismicity

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-06-03 → 2021-06-02
EU contribution
€183,473
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

exhumed foSsiL shear zones: a key to Investigate Present middle-crustal seismicity

With approximately 500,000 earthquakes happening each year and as many as 100,000 of those being felt, seismic events represent a major hazard for humanity. In the last twenty years, geoscientists have discovered and characterized by means of indirect geophysical and geodetic techniques peculiar seismic phenomena occurring at convergent margins, which are referred to in the scientific community as “episodic tremor and slow slip events” (ETS). Tremors are a persistent low-frequency seismic signal associated with slow slip, a geodetically detected slip larger than the average plate motion. Although ETS do not represent a direct threat to humans, the fact that they are located in proximity of megathrust earthquakes and are believed to mark stress transfer to the megathrust faults makes them of great interest to geoscientists. Therefore, their better characterization can help to shed light on the very hazardous subduction seismicity. Unfortunately, direct observation of the geological record of these phenomena is only possible by analysing rocks exhumed from fossil subduction zones, such that the rock record of deep seismic activity is scanty because subducted rocks commonly re-equilibrate during exhumation en-route to the surface. The Italian Northern Apennines (Italy) expose deeply subducted rocks exhumed back to the surface that still preserve mineralogical assemblages and structures acquired at great depth in the subduction channel. The studied rocks display evidence of coeval discontinuous and continuous deformation in the form of veins and pervasive foliation, respectively. Veins are composed of quartz and carpholite fibres oriented parallel to the stretching lineation of the host rock and display crack-seal textures. Veins thus formed by incremental growth of the constituent fibres by repeated brittle failure (fracture opening) and sealing of the fracture. These veins display strong analogies with dilational hydroshear veins, a key indicator and well known geological record of ETS occurring at shallow depth within accretionary wedges in subduction channels. By using mineralogical assemblages, thermodynamic modeling and age dating, we constrained the formation of both veins and foliation to pressure and temperature conditions of ~1 GPa and 350 °C at c. 20 Ma. These results suggest depths of 30-40 km and cold geothermal gradients typical of subduction zones. We propose that episodic pulses of aqueous fluids released due to destabilization of hydrated minerals during subduction can be held responsible for the formation of the observed veins. Concluding, we suggest that these diagnostic veins can be regarded as a powerful fingerprint of deep ETS occurring in subduction zones. Based on the widespread occurrence of these veins, we propose that deep ETS are indeed common at the scale of the entire Apennine orogen. Therefore, the results of this Action require some degree of reinterpretation of the seismotectonic role of several metamorphic units worldwide and, at the same time, assist in doing it.

Data: CORDIS, © European Union

Project objective

Deformation zones may localize seismicity not only at upper crustal levels along brittle faults, but also at greater depth along ductile shear zones. The latter is at odds to classic rheological models predicting shear zones to creep and behave aseismically. Cycles of frictional and viscous deformation and brittle precursors to ductile deformation have been proposed as possible explanation.The “SLIP” action will contribute to better constrain seismic localization at mid-crustal depths along ductile shear zones by studying key areas of the Northern Apennines of Italy (NA). SLIP relies on the hypothesis that exhumed brittle-ductile shear zones of the inner NA represent the fossil analogue of the still seismically active deformation zones in the central and external portions of the orogen. SLIP will investigate microstructures in a multidisciplinary action to derive constraints upon the seismic deformation mechanisms steering the orogen seismic activity.The objectives of this proposal are to: 1) Unravel the pressure-temperature-time-deformation histories of exhumed fossil shear zones; 2) Define the role of fluids in triggering metamorphic reactions, enhancing deformation and steering the transient rheology of the shear zones; 3) Determine the provenance of the metamorphic fluids; 4) Reconstruct the tectonic evolution and the conceptual seismotectonic model of the NA.To achieve the above defined specific objectives, a multidisciplinary approach has been designed including fieldwork, optical and scanning electron microscope analyses, Raman spectroscopy, electron probe micro-analyser, laser ablation mass spectrometry, thermodynamic modelling, and age dating of deformation fabrics. SLIP will contribute to our understanding of shallow to mid-crustal earthquakes and its results will remarkably assist in better interpreting current seismic patterns and crustal behaviours. It will also shed new light on the fluid pathways and fluid-rock interaction processes in the crust.

Original text from CORDIS.

Participants

  • ALMA MATER STUDIORUM - UNIVERSITA DI BOLOGNA · BolognaCoordinatorItaly

Links

Data: CORDIS, © European Union