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Effect of intense plastic straining on microstructure and mechanical properties of an Al-Mg-Sc alloy to true strains of ∼3 and ∼8, that resulted in the formation of partially recrystallized and fully

Superplastic behavior and microstructure evolution in a commercial Al-Mg-Sc alloy subjected to intense plastic straining, and fracture caused by high-strain-rate superplastic deformation

Microstructural evolution in ZK60 magnesium alloy during severe plastic deformationGrain formation during intense plastic straining was interpreted in terms of low temperature

Mechanisms of Grain Refinement in Aluminum Alloys during Severe Plastic DeformationThe mechanisms of grain refinement during severe plastic deformation have been studied

Effect of intense plastic straining and subsequent heat treatment on mechanical properties of an Al-Li-Mg-Sc-Zr alloyEffect of intense plastic straining and subsequent heat treatment on mechanical properties of an Al

Superplastic behaviour and microstructure evolution in a commercial ultra-fine grained Al-Mg-Sc alloy to a total strain of about 16 that resulted in an average grain size of about 1 µm. Superplastic

Mechanical properties of an Al-Mg-Sc alloy subjected to intense plastic strainingEffect of intense plastic straining on rollability and service properties of an Al-6%Mg- 0.3%Sc

An accurate numerical method of solving singular boundary value problems for the stationary flow of granular materials and its application, is the strain rate intensity factor, which controls the magnitude of the shear strain rate near the singular

Reply to comments by Yu. A. Skakov and M. A. Shtremel' on the article "induced Diffusion: The Main Mechanism for the Production of Driven Alloys" formation by cold intensive plastic deformation. The basis for the model is a messenger mechanism

Microstructure evolution in a Cu-Cr-Zr alloy during warm intense plastic strainingThe effect of equal channel angular pressing at a temperature of 200°C to a total strain of 12

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