On the investigation of size effect in bcc α-iron under high strain rate and high temperature: Multiscale dislocations dynamics simulations

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Elsevier Ltd

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Size effect for BCC α-iron is investigated for micro-polycrystalline grains. MDDP simulations were performed to mimic impenetrable grain boundaries at sizes ranging between 0.5 μm and 2 μm at an applied rate of 105 s−1 at 300 K, 600 K and 900 K temperatures. For the three deformation temperatures, the Hall-Petch effect and the Orowan effect are reproduced. A comprehensive study of the microstructure evolution shows that screw dislocations control the plastic deformation of the polycrystalline materials via the activation of cross-slip mechanisms. Hardening is seen at low sizes for all temperatures at low strain range due to the dislocations pile up inside the grains prior to cross-slip activation. Once cross-slip is thermally activated, self-multiplication of dislocations is detected resulting in strain softening indicating that Orowan fit represented better the size effect in micro-polycrystalline BCC α-iron. © 2022 Elsevier Masson SAS

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Dislocation dynamics simulations, Hall-petch effect, Micro-polycrystalline bcc grains, Orowan effect, Size effect, Chemical activation, Grain boundaries, Piles, Polycrystalline materials, Size determination, Strain rate, Cross-slip, Dislocation dynamics simulation, Hall-petch effects, High-strain-rate, Highest temperature, Micro-polycrystalline bcc grain, Polycrystalline, Polycrystalline grains, Sizes effect, Iron

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