- By:
- Yu, Dunji ; Huang, Lu; Chen, Yan ; Komolwit, Piyamanee; An, Ke
- Journal Name:
- Journal of the Minerals Metals & Materials Society (JOM)
- Page Number:
- 1576-1586
- Volume:
- 70
- Publication Date:
- September 1, 2026
- View DOI Listing:
- https://doi.org/10.1007/s11837-018-2947-4
Abstract
Real-time in situ neutron diffraction was used to investigate the loading-direction dependence of phase-specific load sharing in a cold-rolled TRIP 780 sheet steel under tension at room temperature. A slightly lower yield stress and relatively faster initial strain hardening were observed for the tension along the rolling direction (RD), than those along the transverse direction (TD) and the diagonal direction (DD). In all three loading directions, the redistribution of inter-phase and inter-granular load sharing occurs upon the yields of the BCC matrix and the FCC phase. The FCC phase is found to yield earlier along the RD than those along the TD and DD. Based on the Hooke’s law and the rule of mixture, it is found that the lattice strains of BCC-(211)/FCC-(311) reflections via single peak fit are better representative of phase elastic strains than the strains calculated via the lattice parameters by Rietveld refinement. The quantitative evolution of phase-specific stress indicates a rapid strain hardening in the FCC phase after yielding during the RD tension. Possible mechanisms of the direction-dependent phase-specific load sharing are discussed in association with the different initial textures in the RD, DD and TD.