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Accordingly, the microscopic strain environment within a CG scaffold is offered here.
The mechanical response of multiphase alloys is governed by the microscopic strain and stress partitioning behavior among microstructural constituents.
To distinguish between the intrinsic and extrinsic effect microscopic strain measurements (Synchrotron X-ray diffraction) were compared with macroscopic measurements of the mechanical hysteresis loop.
Heterogeneities in the randomly crosslinked networks cause significant differences in the localization of monomers, however, neither the localization of crosslinks nor the microscopic strain response are significantly affected.
Observation of films with different strains showed that the microscopic strain of the single chain was smaller than the macroscopic strain of the film.
The microscopic strain distributions were studied for stress corrosion cracks produced electrochemically in C-rings of Alloy 600 (0.65 Ni, 0.16 Cr, 0.08 Fe).
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The microscopic strains are then superposed together to obtain the constitutive relation of the multiphase porous media using homogenization scheme.
Microscopic strains associated with stress corrosion cracks have been investigated in stressed C-rings of Ni 16 Cr–9 Fe (Alloy 600) boiler tubing.
Simultaneously, the microscopic stress and strain fields at different loading stages are also revealed in the simulations.
This is in part a result of grain-size reduction and partly caused by the enhanced density of defects (mainly dislocations produced during the heavy deformation process by ball milling) that introduce a large residual (microscopic) lattice strain.
Approximate models involving only a finite number of those can be obtained by considering a decomposition of the microscopic anelastic strain field on a finite set of transformation fields.
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