A physically-informed continuum crystal plasticity model is presented to elucidate the deformation mechanisms and dislocation evolution in body-centered-cubic (bcc) tantalum widely used as a key structural material for mechanical and thermal extremes. We show our unified structural modeling framework informed by mesoscopic dislocation dynamics simulations is capable of capturing salient features of the large inelastic behavior of tantalum at quasi-static (10$^{-3}$ s$^{-1}$) to extreme strain rates (5000 s$^{-1}$) and at room temperature and higher (873K) at both single- and polycrystal levels. We also present predictive capabilities of our model for microstructural evolution in the material. To this end, we investigate the effects of dislo...
In principle, the macroscopic plasticity properties of crystalline materials are derivable from the ...
Shear localization is often a failure mechanism in materials subjected to high strain rate deformati...
Fully dense, nanocrystalline tantalum (average grain size as small as ~40 nm) has been processed for...
A series of compression experiments characterising the elastic-plastic response of single crystal an...
The mechanical behavior of polycrystalline metals can be successfully modeled by macroscopic theorie...
The mechanical behavior of polycrystalline metals can be successfully modeled by macroscopic theorie...
Ordinarily, the strength and plasticity properties of a metal are defined by dislocations—line defec...
A polycrystalline model is proposed to model the large plastic deformation and texture evolutions in...
Advances in the ability to generate extremely high pressures in dynamic experiments such as at the N...
Advances in the ability to generate extremely high pressures in dynamic experiments such as at the N...
Recent advances in the ability to generate extremes of pressure and temperature in dynamic experimen...
Although extensive simulations and experimental investigations have been carried out, the plastic de...
The nanocontact plastic behaviour of single-crystalline Ta (1¿0¿0), Ta (1¿1¿0) and Ta (1¿1¿1) was st...
This research on a model bcc metal, tantalum, has three components: the study of tensile failure; de...
Ductile rupture is the dominant failure mechanism in body centered cubic (BCC) tantalum (Ta) loaded ...
In principle, the macroscopic plasticity properties of crystalline materials are derivable from the ...
Shear localization is often a failure mechanism in materials subjected to high strain rate deformati...
Fully dense, nanocrystalline tantalum (average grain size as small as ~40 nm) has been processed for...
A series of compression experiments characterising the elastic-plastic response of single crystal an...
The mechanical behavior of polycrystalline metals can be successfully modeled by macroscopic theorie...
The mechanical behavior of polycrystalline metals can be successfully modeled by macroscopic theorie...
Ordinarily, the strength and plasticity properties of a metal are defined by dislocations—line defec...
A polycrystalline model is proposed to model the large plastic deformation and texture evolutions in...
Advances in the ability to generate extremely high pressures in dynamic experiments such as at the N...
Advances in the ability to generate extremely high pressures in dynamic experiments such as at the N...
Recent advances in the ability to generate extremes of pressure and temperature in dynamic experimen...
Although extensive simulations and experimental investigations have been carried out, the plastic de...
The nanocontact plastic behaviour of single-crystalline Ta (1¿0¿0), Ta (1¿1¿0) and Ta (1¿1¿1) was st...
This research on a model bcc metal, tantalum, has three components: the study of tensile failure; de...
Ductile rupture is the dominant failure mechanism in body centered cubic (BCC) tantalum (Ta) loaded ...
In principle, the macroscopic plasticity properties of crystalline materials are derivable from the ...
Shear localization is often a failure mechanism in materials subjected to high strain rate deformati...
Fully dense, nanocrystalline tantalum (average grain size as small as ~40 nm) has been processed for...