TY - JOUR
T1 - Fabrication of large-depth and multiscale gradient microstructure in dual-phase high entropy alloy via shock loading
AU - Guo, Yansong
AU - Jia, Bin
AU - Du, Yong
AU - Wu, Xuan
AU - Fan, Hang
AU - Li, Gen
AU - Wang, Chenguang
AU - Zhou, Changqing
AU - Gao, Tianze
AU - Ge, Yanxin
AU - Gao, Maoguo
AU - Zhou, Qiang
AU - Chen, Pengwan
N1 - Publisher Copyright:
© 2023 The Author(s)
PY - 2023/11/1
Y1 - 2023/11/1
N2 - Large-depth and multiscale gradient microstructure in dual-phase Al0.6CoCrFeNi high entropy alloy (HEA) were fabricated by explosion hardening (EH) technique. The gradient microstructure evolution was investigated in detail. The microhardness distribution and tensile properties near EH affected surface were also determined. The formation and strengthening mechanisms of gradient microstructure after EH treatment were subsequently analyzed. Experimental results showed that the multiscale gradient microstructure in terms of grain size, phase morphology, dislocation structure, texture was induced in dual-phase (BCC + FCC) HEA by EH technique. The closer to EH affected surface, the finer grain size, higher dislocation density and stronger texture intensity. The deformation and break of spinodal decomposition and formation of new grain boundaries by dislocation structure contributed to grain refinement and transition of equiaxed grains to dendritic grains from lower area to EH affected surface. After EH treatment, the microhardness generally increased with a maximum increase of ∼67% within 5 mm from EH affected surface, the tensile yield stress increased from 320 MPa to maximum of 700 MPa. The strengthening mechanism is different at various depth positions: near EH affected surface, the main strengthening mechanism is high-density dislocations, stacking faults and grain refinement; in areas relatively far from EH affected surface, only dislocation structure contributed to the strengthening of mechanical properties.
AB - Large-depth and multiscale gradient microstructure in dual-phase Al0.6CoCrFeNi high entropy alloy (HEA) were fabricated by explosion hardening (EH) technique. The gradient microstructure evolution was investigated in detail. The microhardness distribution and tensile properties near EH affected surface were also determined. The formation and strengthening mechanisms of gradient microstructure after EH treatment were subsequently analyzed. Experimental results showed that the multiscale gradient microstructure in terms of grain size, phase morphology, dislocation structure, texture was induced in dual-phase (BCC + FCC) HEA by EH technique. The closer to EH affected surface, the finer grain size, higher dislocation density and stronger texture intensity. The deformation and break of spinodal decomposition and formation of new grain boundaries by dislocation structure contributed to grain refinement and transition of equiaxed grains to dendritic grains from lower area to EH affected surface. After EH treatment, the microhardness generally increased with a maximum increase of ∼67% within 5 mm from EH affected surface, the tensile yield stress increased from 320 MPa to maximum of 700 MPa. The strengthening mechanism is different at various depth positions: near EH affected surface, the main strengthening mechanism is high-density dislocations, stacking faults and grain refinement; in areas relatively far from EH affected surface, only dislocation structure contributed to the strengthening of mechanical properties.
KW - Dual-phase high entropy alloy
KW - Explosion hardening
KW - Gradient microstructure
KW - Grain refinement
KW - Shock-induced strengthening
UR - http://www.scopus.com/inward/record.url?scp=85173174192&partnerID=8YFLogxK
U2 - 10.1016/j.jmrt.2023.09.243
DO - 10.1016/j.jmrt.2023.09.243
M3 - Article
AN - SCOPUS:85173174192
SN - 2238-7854
VL - 27
SP - 248
EP - 261
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
ER -