TY - JOUR A1 - Moreno, Marcelo Spegiorin A1 - Melnick, Daniel A1 - Rosenau, M. A1 - Báez, Juan Carlos A1 - Klotz, Jan A1 - Oncken, Onno A1 - Tassara, Andres A1 - Chen, J. A1 - Bataille, Klaus A1 - Bevis, M. A1 - Socquet, Anne A1 - Bolte, John A1 - Vigny, C. A1 - Brooks, B. A1 - Ryder, I. A1 - Grund, Volker A1 - Smalley, B. A1 - Carrizo, Daniel A1 - Bartsch, M. A1 - Hase, H. T1 - Toward understanding tectonic control on the M-w 8.8 2010 Maule Chile earthquake JF - Earth & planetary science letters N2 - The Maule earthquake of 27th February 2010 (M-w = 8.8) affected similar to 500 km of the Nazca-South America plate boundary in south-central Chile producing spectacular crustal deformation. Here, we present a detailed estimate of static coseismic surface offsets as measured by survey and continuous GPS, both in near- and far-field regions. Earthquake slip along the megathrust has been inferred from a Joint inversion of our new data together with published GPS, InSAR, and land-level changes data using Green's functions generated by a spherical finite-element model with realistic subduction zone geometry. The combination of the data sets provided a good resolution, indicating that most of the slip was well resolved. Coseismic slip was concentrated north of the epicenter with up to 16 m of slip, whereas to the south it reached over 10 m within two minor patches. A comparison of coseismic slip with the slip deficit accumulated since the last great earthquake in 1835 suggests that the 2010 event closed a mature seismic gap. Slip deficit distribution shows an apparent local overshoot that highlight cycle-to-cycle variability, which has to be taken into account when anticipating future events from interseismic observations. Rupture propagation was obviously not affected by bathymetric features of the incoming plate. Instead, splay faults in the upper plate seem to have limited rupture propagation in the updip and along-strike directions. Additionally, we found that along-strike gradients in slip are spatially correlated with geometrical inflections of the megathrust. Our study suggests that persistent tectonic features may control strain accumulation and release along subduction megathrusts. KW - GPS KW - Chile KW - Maule KW - slip model KW - FEM Y1 - 2012 U6 - https://doi.org/10.1016/j.epsl.2012.01.006 SN - 0012-821X VL - 321 IS - 3 SP - 152 EP - 165 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Moreno, Marcelo Spegiorin A1 - Melnick, Daniel A1 - Rosenau, M. A1 - Bolte, John A1 - Klotz, Jan A1 - Echtler, Helmut Peter A1 - Báez, Juan Carlos A1 - Bataille, Klaus A1 - Chen, J. A1 - Bevis, M. A1 - Hase, H. A1 - Oncken, Onno T1 - Heterogeneous plate locking in the South-Central Chile subduction zone building up the next great earthquake JF - Earth & planetary science letters N2 - We use Global Positioning System (GPS) velocities and kinematic Finite Element models (FE-models) to infer the state of locking between the converging Nazca and South America plates in South-Central Chile (36 degrees S -46 degrees S) and to evaluate its spatial and temporal variability. GPS velocities provide information on earthquake-cycle deformation over the last decade in areas affected by the megathrust events of 1960 (M-w = 9.5) and 2010 (M-w = 8.8). Our data confirm that a change in surface velocity patterns of these two seismotectonic segments can be related to their different stages in the seismic cycle: Accordingly, the northern (2010) segment was in a final stage of interseismic loading whereas the southern (1960) segment is still in a postseismic stage and undergoes a prolonged viscoelastic mantle relaxation. After correcting the signals for mantle relaxation, the residual GPS velocity pattern suggests that the plate interface accumulates slip deficit in a spatially and presumably temporally variable way towards the next great event. Though some similarity exist between locking and 1960 coseismic slip, extrapolating the current, decadal scale slip deficit accumulation towards the similar to 300-yr recurrence times of giant events here does neither yield the slip distribution nor the moment magnitude of the 1960 earthquake. This suggests that either the locking pattern is evolving in time (to reconcile a slip deficit distribution similar to the 1960 earthquake) or that some asperities are not persistent over multiple events. The accumulated moment deficit since 1960 suggests that highly locked patches in the 1960 segment are already capable of producing a M similar to 8 event if triggered to fail by stress transfer from the 2010 event. KW - GPS KW - Chile KW - Maule KW - locking degree KW - postseismic deformation KW - earthquake cycle Y1 - 2011 U6 - https://doi.org/10.1016/j.epsl.2011.03.025 SN - 0012-821X VL - 305 IS - 3-4 SP - 413 EP - 424 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Haberland, Christian A1 - Rietbrock, Andreas A1 - Lange, Dietrich A1 - Bataille, Klaus A1 - Hofmann, S. T1 - Interaction between forearc and oceanic plate at the south-central Chilean margin as seen in local seismic data JF - Geophysical research letters N2 - We installed a dense, amphibious, temporary seismological network to study the seismicity and structure of the seismogenic zone in southern Chile between 37° and 39°S, the nucleation area of the great 1960 Chile earthquake. 213 local earthquakes with 14.754 onset times were used for a simultaneous inversion for the 1‐D velocity model and precise earthquake locations. Relocated artificial shots suggest an accuracy of the earthquake hypocenter of about 1 km (horizontally) and 500 m (vertically). Crustal events along trench‐parallel and transverse, deep‐reaching faults reflect the interseismic transpressional deformation of the forearc crust due to the subduction of the Nazca plate. The transverse faults seems to accomplish differential lateral stresses between subduction zone segments. Many events situated in an internally structured, planar seismicity patch at 20 to 40 km depth near the coast indicate a stress concentration at the plate's interface at 38°S which might in part be induced by the fragmented forearc structure. Y1 - 2006 U6 - https://doi.org/10.1029/2006GL028189 SN - 0094-8276 VL - 33 IS - 23 PB - Union CY - Washington ER - TY - JOUR A1 - Farïas, Marcelo A1 - Vargas, Gabriel A1 - Tassara, Andrés A1 - Carretier, Sébastien A1 - Baize, Stéphane A1 - Melnick, Daniel A1 - Bataille, Klaus T1 - Land-level changes produced by the M-w 8.8 2010 Chilean earthquake N2 - We observed vertically displaced coastal and river markers after the 27 February 2010 Chilean earthquake [moment magnitude (Mw) 8.8]. Land-level changes range between 2.5 and -1 meters, evident along an ~500-kilometers- long segment identified here as the maximum length of coseismic rupture. A hinge line located 120 kilometers from the trench separates uplifted areas, to the west, from subsided regions. A simple elastic dislocation model fits these observations well; model parameters give a similar seismic moment to seismological estimates and suggest that most of the plate convergence since the 1835 great earthquake was elastically stored and then released during this event. Y1 - 2010 UR - http://www.sciencemag.org/ U6 - https://doi.org/10.1126/science.1192094 SN - 0036-8075 ER -