TY - JOUR
T1 - Experimental determination of latent hardening coefficients in FeMnNiCoCr
AU - Wu, Y.
AU - Bönisch, M.
AU - Alkan, S.
AU - Abuzaid, W.
AU - Sehitoglu, H.
N1 - This work was supported by the National Science Foundation , NSF CMMI -1562288 . The TEM and EBSD analyses were carried out in part in the Frederick Seitz Materials Research Laboratory Central Research Facilities, University of Illinois. The single crystals were grown by Prof. Yuriy Chumlyakov of Tomsk State University, Russia.
PY - 2018/6
Y1 - 2018/6
N2 - The equi-atomic FeMnNiCoCr high entropy alloy is attracting unprecedented attention due to its exceptional strain hardening behavior extending to large strains and to low temperatures (77K). In this paper, we analyze the nano- to macroscale deformation response of FeMnNiCoCr single crystals and explain variations in strain hardening based on the activation of different twin and slip systems and their interactions. We experimentally determine the latent and the self hardening moduli upon twin-twin, slip-twin, twin-slip and slip-slip interactions. Choosing single crystal orientations that isolate these interactions enables the evaluation of the pertaining hardening moduli without ambiguity. Differing from the earlier experimental approaches employed, which necessitate sample reorientation to quantify the self and latent hardening coefficients, in this work, we demonstrate a novel framework where plastic straining is implemented in a monotonic fashion entailing the latent and primary systems to operate simultaneously. To extract the hardening moduli and to characterize the twin-twin, slip-twin, twin-slip and slip-slip interactions on experimental grounds, <111>tension and <001>compression single crystalline samples are studied by high resolution digital image correlation, electron backscatter diffraction and transmission electron microscopy techniques. The results demonstrate that the magnitude of residual Burgers vectors play a key role in explaining the experimental hardening trends.
AB - The equi-atomic FeMnNiCoCr high entropy alloy is attracting unprecedented attention due to its exceptional strain hardening behavior extending to large strains and to low temperatures (77K). In this paper, we analyze the nano- to macroscale deformation response of FeMnNiCoCr single crystals and explain variations in strain hardening based on the activation of different twin and slip systems and their interactions. We experimentally determine the latent and the self hardening moduli upon twin-twin, slip-twin, twin-slip and slip-slip interactions. Choosing single crystal orientations that isolate these interactions enables the evaluation of the pertaining hardening moduli without ambiguity. Differing from the earlier experimental approaches employed, which necessitate sample reorientation to quantify the self and latent hardening coefficients, in this work, we demonstrate a novel framework where plastic straining is implemented in a monotonic fashion entailing the latent and primary systems to operate simultaneously. To extract the hardening moduli and to characterize the twin-twin, slip-twin, twin-slip and slip-slip interactions on experimental grounds, <111>tension and <001>compression single crystalline samples are studied by high resolution digital image correlation, electron backscatter diffraction and transmission electron microscopy techniques. The results demonstrate that the magnitude of residual Burgers vectors play a key role in explaining the experimental hardening trends.
KW - High entropy alloys
KW - Latent hardening
KW - TEM
KW - Twin-twin interaction
KW - fcc
UR - https://www.scopus.com/pages/publications/85044972028
UR - https://www.scopus.com/pages/publications/85044972028#tab=citedBy
U2 - 10.1016/j.ijplas.2018.02.016
DO - 10.1016/j.ijplas.2018.02.016
M3 - Article
AN - SCOPUS:85044972028
SN - 0749-6419
VL - 105
SP - 239
EP - 260
JO - International journal of plasticity
JF - International journal of plasticity
ER -