Abstract
Average seismic cycle duration extends from hundred to a few thousands years but available geodetic measurements, including trilateration, GPS, Insar and seismological data extend over less than one century. This short time observation scale renders difficult, then, to constrain the role of key parameters such as fault friction and geometry, crust rheology, stress and strain rate that control the kinematics and mechanics of active faults. Tosolve this time scale issue, I have developed a new experimental set-up that reproduces scaled micro-earthquakes along a strike-slip fault during several hundreds of seismic cycles. The model is constituted by two polyurethane foam plates laterally in contact, lying on a basal silicone layer, which simulate the mechanical behaviour of an elastoplastic upper crust coupled with a ductile lower crust, respectively. For each experience about 4000 horizontal-velocity field measurements are recorded. The analysis of model-interseismic, coseismic and postseismic surface displacements and their comparison to seismogenic natural faults demonstrate that our analog modelreproduces correctly both near and far-field surface strains. I also performed surface-velocity field inversions to assess the spatial distribution of slip and stress at depth along the fault plane. To compare the experiences, we have developed several algorithms that allow studying the spatial and temporal evolution of the main physical parameters and surface deformation processes that characterise the seismic cycle (magnitudes, stress, strain, friction coefficients, interseismic locking depth, recurrence time, ...).My first results suggest that far-field boundary-velocity conditions play a key role on the seismic cycle by influencing earthquake magnitudes and recurrence time, as well as the capability of the fault to generate characteristic earthquakes. We observed that low loading rate favors rare but large strong characteristic events and high loading rate numerous low to moderate magnitude more distributed microquakes. My first hypothesis is that this behaviour may be controlled by the brittle/ductile coupling at the base of foam plates. For a high loading rate, viscous forces in the silicone layer increase as well as coupling at the base of the foam plates. These features force the base of the fault to slip at a velocity close to the far field velocity and induce a more heterogeneous stress field along the fault favoring low to moderate microquakes. For a low loading rate, silicone almost behaves as a newtonian fluid and viscous forces strongly decrease, allowing the fault to remain locked for a longer period and to accumulate more elastic strain. Stresses are then relaxed by larger seismic events.Finally, I investigate experimentally the role played by along fault initial normal stress variations on coseismic slip and long term fault behavior. Results show that coseismic slip patterns are strongly controlled by variations in fault strength and subsequent accumulated shear stress along fault strike. Major microquake events occur preferentially into zone of major shear stress asperities and coseismic slip distributions follow similar trends than initial normal stress variations along the fault. Moreover, our experiment suggest that the heterogeneity of initial stress state along the fault influence the regularity of the seismic cycle and, consequently, long term fault slip behavior. Results of this parametric study comfort, then, the hypothesis that coseismic slip distribution along earthquake ruptures may provide relevant informations on unknown initial stress state and could thus improve our understanding of seismic hazard. Our experimental approach appears then, as an efficient complementary method to investigate earthquake dynamics.