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Both the slip band development and out-of-plane displacements are correlated to the local stress levels.
Second, the shear band development in plane strain tension/compression is analyzed by the finite element method.
Shear band development is related to the inherent mechanical properties of each crystal and also to the properties of the abutting crystals.
A simple model for analysis of shear band development in uniformly strained solids is used to study the possibility of flow localization during metal powder compaction.
The proposed model first combines a three-dimensional (3D) transient heating effects with a one-dimensional (1D) shear localization process leading to shear band development within one pin revolution.
Therefore, a conclusion that Casparian band development is accelerated by salinity stress cannot be drawn exclusively from the observation that the band forms closer to the root tip under the stress.
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Third, shear band developments in plane strain pure bending of a sheet specimen with the typical textures are studied.
In an experiment, a sandbox model was built using noncohesive sandy soil to simulate the existence of a growth fault in the Shanchiao Fault and forecast the effect of the growth fault on shear-band development and ground differential deformation.
In this study, a numerical simulation of the sandbox experiment was conducted using a discrete element method program, PFC2D, to simulate the upper-covering sand layer shear-band development pace and the scope of a growth normal fault slip.
Moreover, a combination of both is found in intermediate germ-band development.
Transitions between short and long germ-band development occurred during evolution of arthropods [7], [8], [14] [16], [49].
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