December 17, 2020
Journal Article

Correlating work hardening with co-activation of stacking fault strengthening and transformation in a high entropy alloy using in-situ neutron diffraction

Abstract

Transformation induced plasticity (TRIP) leads to enhancements in ductility in low stacking fault energy (SFE) alloys, however to achieve an unconventional increase in strength simultaneously, there must be barriers to dislocation motion. While stacking faults (SFs) contribute to strengthening by impeding dislocation motion, the contribution of SF strengthening to work hardening during deformation is not well understood; as compared to dislocation slip, twinning induced plasticity (TWIP) and TRIP. Thus, we used in-situ neutron diffraction to correlate SF strengthening to work hardening behavior in a low SFE Fe40Mn20Cr15Co20Si5 (at. %) high entropy alloy, SFE ~ 6.31 mJ m-2. Cooperative activation of multiple mechanisms was indicated by increases in SF strengthening and ?-f.c.c. ? e-h.c.p. transformation leading to a simultaneous increase in strength and ductility. The present study demonstrates the application of in-situ, neutron or x-ray, diffraction techniques to correlating SF strengthening to work hardening.

Revised: December 29, 2020 | Published: December 17, 2020

Citation

Frank M., S.S. Nene, Y. Chen, B. Gwalani, E.J. Kautz, A. Devaraj, and K. An, et al. 2020. Correlating work hardening with co-activation of stacking fault strengthening and transformation in a high entropy alloy using in-situ neutron diffraction. Scientific Reports 10, no. 1:Article No. 22263. PNNL-SA-157863. doi:10.1038/s41598-020-79492-8

Research topics