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A dislocation model for materials with very narrow slit pores is proposed.
Hafezalkotob and Hafezalkotob (2016a) inserted the objective significance coefficients based on Shannon entropy in an extended MULTIMOORA model for materials selection.
This paper presents the theoretical formulation and numerical implementation of an anisotropic damage model for materials with intrinsic transverse isotropy.
This paper enriches the constitutive relation with the micro fracture mechanism presented in SW potential, providing a new micro constitutive model for materials.
A geometrical model for materials with liquid grain boundaries (GB) is proposed, which allows one to determine the solid contact length between grains.
Being a general model for materials that otherwise have a low Peierls stress, it has broad application and has been successfully applied to Al-X alloys, Mg-Al, twinning in Mg alloys, and recently fcc High-Entropy Alloys.
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Cousigné et al. (2013) developed a nonlinear numerical material model for textile composite materials considering post-failure damage.
Therefore, a nonlinear numerical material model for textile composite materials has been developed for shells and thick shells.
Based on the underlying deformation and grain boundary fracture, we propose a model for material failure underlying HTHA.
In order to account for large number of phenomena that appear in material during loading, complex material model for material behaviour modeling is chosen.
For the numerical modeling, the Discrete Empirical Model for particle particle collision and Oka׳s model for material erosion are employed and implemented within the framework of Computational Fluid Dynamics.
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