TY - JOUR
T1 - Crystallographic evidences for twin-assisted eutectic growth in undercooled Ni-18.7 at.%Sn eutectic melts
AU - Zhang, Fan
AU - Zhang, Jianbao
AU - Lü, Xinlei
AU - Hua, Ke
AU - Zhao, Yuhong
AU - Wang, Haifeng
N1 - Publisher Copyright:
© 2022
PY - 2023/2/1
Y1 - 2023/2/1
N2 - Rapid solidification in undercooled Ni-18.7 at.%Sn eutectic melts was observed in-situ by a high-speed high-resolution camera and the microstructures were characterized in detail by electron backscattering diffraction. For the first time, the exact crystallographic orientation relations (ORs) between HCP-Ni3Sn (α-Ni) subsets were analyzed. For HCP-Ni3Sn, the {112¯1}<1¯1¯26> and/or {112¯2}<112¯3¯> twin ORs (i.e., HCP-Ni3Sn twins) hold independently on undercooling, whereas for α-Ni, the {111}<112¯> twin OR is the case at low undercooling and would hold initially at intermediate and high undercooling. The roles of twinning and allotropy transformation (i.e., FCC-Ni3Sn → HCP-Ni3Sn) were integrated to reveal the formation mechanism of HCP-Ni3Sn twins, and a reversed OR transition analysis was carried out for representative samples from low to high undercooling. Consequently, novel twin-assisted eutectic growth was found to occur all along. On this basis, we showed that the single nucleation mode of Herlach is followed, and speculated that primary and secondary coupled eutectic dendrite growth and un-coupled growth of α-Ni and FCC-Ni3Sn might all be the origins of anomalous eutectics. This work would shed some lights on the long-time controversies about the nucleation mode and the formation mechanism of anomalous eutectics in undercooled eutectic alloys.
AB - Rapid solidification in undercooled Ni-18.7 at.%Sn eutectic melts was observed in-situ by a high-speed high-resolution camera and the microstructures were characterized in detail by electron backscattering diffraction. For the first time, the exact crystallographic orientation relations (ORs) between HCP-Ni3Sn (α-Ni) subsets were analyzed. For HCP-Ni3Sn, the {112¯1}<1¯1¯26> and/or {112¯2}<112¯3¯> twin ORs (i.e., HCP-Ni3Sn twins) hold independently on undercooling, whereas for α-Ni, the {111}<112¯> twin OR is the case at low undercooling and would hold initially at intermediate and high undercooling. The roles of twinning and allotropy transformation (i.e., FCC-Ni3Sn → HCP-Ni3Sn) were integrated to reveal the formation mechanism of HCP-Ni3Sn twins, and a reversed OR transition analysis was carried out for representative samples from low to high undercooling. Consequently, novel twin-assisted eutectic growth was found to occur all along. On this basis, we showed that the single nucleation mode of Herlach is followed, and speculated that primary and secondary coupled eutectic dendrite growth and un-coupled growth of α-Ni and FCC-Ni3Sn might all be the origins of anomalous eutectics. This work would shed some lights on the long-time controversies about the nucleation mode and the formation mechanism of anomalous eutectics in undercooled eutectic alloys.
KW - Allotropy transformation
KW - Anomalous eutectics
KW - Nucleation mode
KW - Twin-assisted eutectic growth
KW - Undercooling
UR - http://www.scopus.com/inward/record.url?scp=85136098514&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2022.06.052
DO - 10.1016/j.jmst.2022.06.052
M3 - 文章
AN - SCOPUS:85136098514
SN - 1005-0302
VL - 135
SP - 65
EP - 79
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -