TY - JOUR
T1 - Microstructural characteristics and mechanical properties of IC10 superalloy and (CoCrNi)94Al3Ti3 MEA joint brazed using NiCrSiB filler
AU - Li, Shiwei
AU - Peng, Yu
AU - Du, Yajie
AU - Yuan, Lin
AU - Xiong, Jiangtao
AU - Li, Jinglong
N1 - Publisher Copyright:
© 2022 Elsevier Inc.
PY - 2022/7
Y1 - 2022/7
N2 - This study focuses on the brazing of IC10 Ni3Al-based superalloy to (CoCrNi)94Al3Ti3 medium-entropy alloy (MEA) using a NiCrSiB filler metal. The microstructure of the brazed joint was comprehensively investigated, and the forming mechanism of the joint was elucidated. The mechanical properties and fracture behavior of the joint were evaluated. The diffusion of boron from the filler to substrates led to the diffusion-affected zone (DAZ), and the M3B2- and M5B3-type boride were precipitated with the coherence of (3 1 0)BCT//(2 0 0)FCC (M3B2) and (0 0 2)BCT//(2 0 0)FCC (M5B3) adjacent to the IC10 and MEA substrate, namely the DAZ I and II respectively. In addition, the edge dislocation reduced the mismatch between the M3B2 boride and the γ matrix. The isothermal solidification zone (ISZ) was formed near the DAZ when the liquidus temperature reached the brazing temperature due to the diffusion of boron and Si and the dissolution of substrates. The formation of ISZ was effectively activated at high brazing temperatures (1090, 1120, and 1150 °C). The athermal solidification zone (ASZ) was detected in the joint brazed at adopted temperatures, which mainly dominated by eutectic reactions and driven by cooling. The ASZ decreased shear strength of the defect-free joint, and readily accelerated initiation and propagation of cracks. The maximum shear strength of 554 MPa was obtained when the joint was brazed at 1120 °C for 10 min. The fracture mainly occurred in the ASZ (semi-cleavage), and passing through the DAZ (semi-cleavage) and ISZ (dimples).
AB - This study focuses on the brazing of IC10 Ni3Al-based superalloy to (CoCrNi)94Al3Ti3 medium-entropy alloy (MEA) using a NiCrSiB filler metal. The microstructure of the brazed joint was comprehensively investigated, and the forming mechanism of the joint was elucidated. The mechanical properties and fracture behavior of the joint were evaluated. The diffusion of boron from the filler to substrates led to the diffusion-affected zone (DAZ), and the M3B2- and M5B3-type boride were precipitated with the coherence of (3 1 0)BCT//(2 0 0)FCC (M3B2) and (0 0 2)BCT//(2 0 0)FCC (M5B3) adjacent to the IC10 and MEA substrate, namely the DAZ I and II respectively. In addition, the edge dislocation reduced the mismatch between the M3B2 boride and the γ matrix. The isothermal solidification zone (ISZ) was formed near the DAZ when the liquidus temperature reached the brazing temperature due to the diffusion of boron and Si and the dissolution of substrates. The formation of ISZ was effectively activated at high brazing temperatures (1090, 1120, and 1150 °C). The athermal solidification zone (ASZ) was detected in the joint brazed at adopted temperatures, which mainly dominated by eutectic reactions and driven by cooling. The ASZ decreased shear strength of the defect-free joint, and readily accelerated initiation and propagation of cracks. The maximum shear strength of 554 MPa was obtained when the joint was brazed at 1120 °C for 10 min. The fracture mainly occurred in the ASZ (semi-cleavage), and passing through the DAZ (semi-cleavage) and ISZ (dimples).
KW - Brazing
KW - Mechanical properties
KW - Medium-entropy alloy
KW - Microstructural characteristics
KW - NiAl-based superalloy
UR - http://www.scopus.com/inward/record.url?scp=85130328512&partnerID=8YFLogxK
U2 - 10.1016/j.matchar.2022.111964
DO - 10.1016/j.matchar.2022.111964
M3 - 文章
AN - SCOPUS:85130328512
SN - 1044-5803
VL - 189
JO - Materials Characterization
JF - Materials Characterization
M1 - 111964
ER -