Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Episodic Buckling and Collapse -- An alternative to the Slow Slip hypothesis

View through CrossRef
We observe a remarkable correlation between the inter-tremor time interval and the slenderness ratio of the overriding plate in subduction zones all over the world. In order to understand this phenomenon better, we perform numerical simulations of deformation as well as study the 3D surficial deformation of the overriding continental crust in Cascadia and Alaska using GPS data. The numerical modeling studies show that critical load and slenderness ratio indeed have an inverse nonlinear relation between them (identical to the classical Eulers critical load relation), and very similar to the non-linear relationship observed between the inter-tremor time interval and the slenderness ratio of the overriding plate. Assuming that all continental wedges experience similar stress rates, the critical stress should be approximately directly proportional to the inter-tremor time interval. Therefore, we can use inter-tremor time interval as a proxy for critical stress. From the above analysis, we conclude that the observed relationship between the inter-tremor time interval and the slenderness ratio of the overriding plate is a result of buckling of the overriding continental plate. In addition to the above numerical analysis, we analyze the surficial 3D spatio-temporal displacements of the overriding plates in Cascadia and Alaska using 3-component GPS data. We find that these deformations are consistent with the buckling of the overriding continental crust. Based on these novel observations, we propose an Episodic Buckling and Collapse model of subduction zones where periodic tectonic-tremor activity and geodetic changes, result from the episodic buckling of the overriding continental crust and its rapid collapse on the subducting oceanic slab. According to this model, geodetic measurements, previously inferred as slow slip, are the surficial expressions of slowly-evolving buckling and rapid collapse of the overriding plate, while tremor swarms result from the striking of the collapsing overriding plate on the subducting slab (as opposed to slipping or shearing). All existing scientific observations and findings, previously interpreted in the light of the Slow Slip hypothesis, are demonstrably explained by the proposed model.
Title: Episodic Buckling and Collapse -- An alternative to the Slow Slip hypothesis
Description:
We observe a remarkable correlation between the inter-tremor time interval and the slenderness ratio of the overriding plate in subduction zones all over the world.
In order to understand this phenomenon better, we perform numerical simulations of deformation as well as study the 3D surficial deformation of the overriding continental crust in Cascadia and Alaska using GPS data.
The numerical modeling studies show that critical load and slenderness ratio indeed have an inverse nonlinear relation between them (identical to the classical Eulers critical load relation), and very similar to the non-linear relationship observed between the inter-tremor time interval and the slenderness ratio of the overriding plate.
Assuming that all continental wedges experience similar stress rates, the critical stress should be approximately directly proportional to the inter-tremor time interval.
Therefore, we can use inter-tremor time interval as a proxy for critical stress.
From the above analysis, we conclude that the observed relationship between the inter-tremor time interval and the slenderness ratio of the overriding plate is a result of buckling of the overriding continental plate.
In addition to the above numerical analysis, we analyze the surficial 3D spatio-temporal displacements of the overriding plates in Cascadia and Alaska using 3-component GPS data.
We find that these deformations are consistent with the buckling of the overriding continental crust.
Based on these novel observations, we propose an Episodic Buckling and Collapse model of subduction zones where periodic tectonic-tremor activity and geodetic changes, result from the episodic buckling of the overriding continental crust and its rapid collapse on the subducting oceanic slab.
According to this model, geodetic measurements, previously inferred as slow slip, are the surficial expressions of slowly-evolving buckling and rapid collapse of the overriding plate, while tremor swarms result from the striking of the collapsing overriding plate on the subducting slab (as opposed to slipping or shearing).
All existing scientific observations and findings, previously interpreted in the light of the Slow Slip hypothesis, are demonstrably explained by the proposed model.

Related Results

Experimental Study Of Curvature And Frictional Effects On Buckling
Experimental Study Of Curvature And Frictional Effects On Buckling
ABSTRACT Buckling and post-buckling lock-up place a limit on the reach of extended-reach and horizontal wells. Although buckling has received considerable theoret...
Understanding Fault Slip Modes Through AE Scaling and Seismic Partitioning
Understanding Fault Slip Modes Through AE Scaling and Seismic Partitioning
Recent observations reveal that faults can host both slow and fast slip events, raising fundamental questions about their governing physics. Initially considered rare phenomena, sl...
Fault state evolution governed by cumulative slip history.
Fault state evolution governed by cumulative slip history.
Given the significant risk that earthquakes pose to society, understanding the spatiotemporal evolution of slip rates on natural faults has been a central research objective over r...
Episodic Buckling and Collapse -- An alternative to the Slow Slip hypothesis
Episodic Buckling and Collapse -- An alternative to the Slow Slip hypothesis
The Slow-Slip hypothesis is postulated on two observations – existence of tectonic tremors and their spatio-temporal correlation with anomalous ‘slow’ reversals in horizontal geode...
Buckling Analysis in Creep Conditions: Review and Comparison
Buckling Analysis in Creep Conditions: Review and Comparison
In the case of structures operating at high temperature in normal or accidental conditions, the influence of creep has to be considered at the design stage because this phenomenon ...
Episodic Buckling and Collapse -- An alternative to the Slow Slip hypothesis
Episodic Buckling and Collapse -- An alternative to the Slow Slip hypothesis
We observe a remarkable correlation between the inter-tremor time interval and the slenderness ratio of the overriding plate in subduction zones all over the world. In order to und...
Study on the influencing factors and evolution of loess bank collapse with physical modelling
Study on the influencing factors and evolution of loess bank collapse with physical modelling
Abstract Background Reservoir bank collapse in loess areas may lead to the siltation of reservoir and bank retreat. Therefore, the study of reservoi...
Effective Slip Lengths for Stokes Flow over Rough, Mixed-Slip Surfaces
Effective Slip Lengths for Stokes Flow over Rough, Mixed-Slip Surfaces
<p>In this thesis, homogenization and perturbation methods are used to derive analytic expressions for effective slip lengths for Stokes flow over rough, mixed-slip surfaces,...

Back to Top