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      Structural segmentation controlled the 2015 Mw7.8 Gorkha earthquake rupture in Nepal

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          The global CMT project 2004–2010: Centroid-moment tensors for 13,017 earthquakes

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            Geometry and kinematics of fault-bend folding

            J. Suppe (1983)
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              Predicting the endpoints of earthquake ruptures.

              The active fault traces on which earthquakes occur are generally not continuous, and are commonly composed of segments that are separated by discontinuities that appear as steps in map-view. Stress concentrations resulting from slip at such discontinuities may slow or stop rupture propagation and hence play a controlling role in limiting the length of earthquake rupture. Here I examine the mapped surface rupture traces of 22 historical strike-slip earthquakes with rupture lengths ranging between 10 and 420 km. I show that about two-thirds of the endpoints of strike-slip earthquake ruptures are associated with fault steps or the termini of active fault traces, and that there exists a limiting dimension of fault step (3-4 km) above which earthquake ruptures do not propagate and below which rupture propagation ceases only about 40 per cent of the time. The results are of practical importance to seismic hazard analysis where effort is spent attempting to place limits on the probable length of future earthquakes on mapped active faults. Physical insight to the dynamics of the earthquake rupture process is further gained with the observation that the limiting dimension appears to be largely independent of the earthquake rupture length. It follows that the magnitude of stress changes and the volume affected by those stress changes at the driving edge of laterally propagating ruptures are largely similar and invariable during the rupture process regardless of the distance an event has propagated or will propagate.
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                Author and article information

                Journal
                Geology
                Geology
                Geological Society of America
                0091-7613
                1943-2682
                July 21 2016
                August 08 2016
                : 44
                : 8
                : 639-642
                Article
                10.1130/G38077.1
                a90e973e-8aa5-465c-ae9b-66c33cca4a9c
                © 2016
                History

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