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Controlled Warm Working: Possible Tool for Optimizing Stored Energy Advantage in Deformed gamma-fiber (ND//)
handle: 10054/9250
In the present study, ultra low carbon steel samples were deformed in near plane-strain mode with different strains, strain rates and temperatures. Estimates of in-grain misorientation developments were obtained respectively for the gamma-fiber (ND//) and alpha-fiber (RD//) oriented deformed grains. Though a general drop in in-grain misorientation was observed with increase in deformation temperature, the highest reduction of 70% showed a clear increase at the intermediate deformation temperatures. Under these condition(s), the misorientation increase in deformed gamma-fiber grains was more substantial than in alpha-fiber grains. The phenomenon was related to the preferred appearance of grain interior strain localizations. The study brings out a clear possibility of optimizing the stored energy advantage in the deformed gamma-fiber through controlled warm working.
Mg Alloy, Shear Bands, Ebsd, Interstitial-Free Steel, Le-Chatelier Bands, Misorientation, Warm Working, Modeling Texture Change, Recrystallization Textures, Deformation, Microtexture, If-Steel, Single-Crystals, Stored Energy, 669, Static Recrystallization, Strain Localizations
Mg Alloy, Shear Bands, Ebsd, Interstitial-Free Steel, Le-Chatelier Bands, Misorientation, Warm Working, Modeling Texture Change, Recrystallization Textures, Deformation, Microtexture, If-Steel, Single-Crystals, Stored Energy, 669, Static Recrystallization, Strain Localizations
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