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The AAPG/Datapages Combined Publications Database

Houston Geological Society Bulletin

Abstract


Houston Geological Society Bulletin, Volume 33, No. 8, April 1991. Pages 54-55.

STUDENT POSTER SESSION COMPETITION

Abstract: Mechanical Models of Compressional Previous HitFaultNext Hit-Related Folds: Controls on Deformation and Internal Stress

By

K. D. Apperson

Plane strain finite element models were used to investigate how rock properties and layering control the sequential development of Previous HitfaultNext Hit-bend and Previous HitfaultNext Hit propagation folds and their internal stress state. The models use an elastic-plastic rheology, displacement boundary conditions, and special elements for frictional surfaces and Previous HitfaultNext Hit tips. Layer deformation and stress and strain distribution are computed at discrete intervals of displacement for models that vary ramp angle (10°-30°), layer thickness (500-1000 m.), and material properties (e.g., yield stress, 50-200 MPa). A comparison of our results to those based on geometric models illustrates the strengths and weaknesses of each method for modeling the deformation and stress state in Previous HitfaultNext Hit-related folds.

The results for Previous HitfaultNext Hit-bend folds are: 1) fold shape and amplitude are little affected by material contrasts between layers; 2) fold geometries are smooth rather than kinked; 3) the strength of the layer at the ramp controls stress and strain distribution in the structure; 4) deformation is very sensitive to the relative magnitudes of the frictional coefficient and yield stress. In Previous HitfaultNext Hit propagation folds, the stress state results from superposition of Previous HitfaultNext Hit tip stresses and the shortening and buckling of the upper plate. The mechanical models of Previous HitfaultNext Hit-bend and Previous HitfaultNext Hit propagation folds do not reproduce the distinct dip domains predicted by geometric models. However, the external fold shape is similar to that predicted by geometric models involving flexural slip. Flattening of the Previous HitfaultTop ramp and foot wall deformation with increasing displacement in finite element models accounts for the smooth profile of these folds.

End_Pages 54 and 55---------------

 

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