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Effect of thermomechanical treatment modes on structural-phase states and mechanical properties of metastable austenitic steel leads to the direct (γ → α′)- and reverse (α′ → γ)-martensitic transformations. As a result

The features of microstructure and mechanical properties of austenitic steel after direct and reverse martensitic transformations allows varying the strength and plastic properties of austenitic steel in a wide range. The strength

Features of deformation localization in stable austenitic steel under thermomechanical treatment

Effect of warm multidirectional forging on the microstructure and mechanical properties of a high-nitrogen austenitic steel. As a result of multidirectional forging, the strength properties of steel increase compared

Special features of the surface layer structure of ferritic-martensitic EP-823-Sh steel after prolonged exposure to the flowing lead at 630 °C under low oxygen concentration[o] = (4–8) × 10−7 wt. %) molten lead flow at 630 °C for 2500 h are investigated. As a result of the liquid

Structural transformations and mechanical properties of stable austenitic steel subjected to thermomechanical treatment-deformed AISI 316 type austenitic steel is investigated. It is shown that cold deformation with a strain degree

Regularities of the deformed microstructure of ferritic-martensitic steel EP-823 after high-temperature thermomechanical treatment to curvature and fragmentation of martensitic lamellae, formation of new low-angle boundaries and a significant

The microstructure and tensile properties of new high-manganese low-activation austenitic steelUsing X-ray diffraction, scanning and transmission electron microscopy, the microstructure of a new

Effect of multistage high temperature thermomechanical treatment on the microstructure and mechanical properties of austenitic reactor steel C with a total strain degree of e = 2) is an effective method for refining the grain structure

The microstructure, tensile and impact properties of low-activation ferritic-martensitic steel EK-181 after high-temperature thermomechanical treatment significantly modifies the steel structural-phase state than the traditional heat treatment (THT). As a result

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