TY - JOUR
T1 - Achieving (TiZrTaNbCr)C/Zr alloy brazed joints with outstanding high-temperature oxidation resistance and mechanical property
AU - Wang, Pengcheng
AU - Gu, Lei
AU - Li, Jinzheng
AU - Liu, Weihan
AU - Xu, Zhiquan
AU - Yan, Yaotian
AU - Song, Xiaoguo
AU - Cao, Jian
AU - Chen, Haiyan
AU - Li, Wenya
N1 - Publisher Copyright:
© 2024 Elsevier Inc.
PY - 2024/11
Y1 - 2024/11
N2 - High entropy carbide ceramics showed outstanding high-temperature oxidation resistance and high-temperature mechanical property, showing a great application potential in nuclear reactor cladding materials. This work proposed a brazing technology to realize the connection of (TiZrTaNbCr)C/Zr-4 brazed joint by Ni-based filler, which exhibited an outstanding high-temperature oxidation resistance and mechanical property. The interface microstructure and phase compositions of the (TiZrTaNbCr)C/Zr-4 joint were investigated. The brazing seam was primarily composed of Zr(s,s), Zr2Ni and ZrCr2. The ZrC and Cr23C6 interface reaction layer and the diffusion of Ni elements ensured the interface bonding. Different to previous researches, the second phase of Cr23C6 was observed in the ZrC reaction layer, improving the strength of interface reaction layer. As a result, a highest shear strength of 105 MPa was achieved at the (TiZrTaNbCr)C/Zr-4 brazed joint. Furthermore, the high temperature shear strength at 800 °C of (TiZrTaNbCr)C/Zr-4 joint was 91 MPa, maintaining 87 % of the room-temperature shear strength. Compared to Zr-4 alloy, the (TiZrTaNbCr)C and BNi-2 filler showed an outstanding oxidation resistance, and the shear strength of the joint was maintained 67 % after oxidized at 900 °C for 8 h.
AB - High entropy carbide ceramics showed outstanding high-temperature oxidation resistance and high-temperature mechanical property, showing a great application potential in nuclear reactor cladding materials. This work proposed a brazing technology to realize the connection of (TiZrTaNbCr)C/Zr-4 brazed joint by Ni-based filler, which exhibited an outstanding high-temperature oxidation resistance and mechanical property. The interface microstructure and phase compositions of the (TiZrTaNbCr)C/Zr-4 joint were investigated. The brazing seam was primarily composed of Zr(s,s), Zr2Ni and ZrCr2. The ZrC and Cr23C6 interface reaction layer and the diffusion of Ni elements ensured the interface bonding. Different to previous researches, the second phase of Cr23C6 was observed in the ZrC reaction layer, improving the strength of interface reaction layer. As a result, a highest shear strength of 105 MPa was achieved at the (TiZrTaNbCr)C/Zr-4 brazed joint. Furthermore, the high temperature shear strength at 800 °C of (TiZrTaNbCr)C/Zr-4 joint was 91 MPa, maintaining 87 % of the room-temperature shear strength. Compared to Zr-4 alloy, the (TiZrTaNbCr)C and BNi-2 filler showed an outstanding oxidation resistance, and the shear strength of the joint was maintained 67 % after oxidized at 900 °C for 8 h.
KW - Brazing
KW - High entropy ceramic
KW - High-temperature mechanical property
KW - Microstructure evolution
KW - Oxidation resistance
UR - http://www.scopus.com/inward/record.url?scp=85203264025&partnerID=8YFLogxK
U2 - 10.1016/j.matchar.2024.114338
DO - 10.1016/j.matchar.2024.114338
M3 - 文章
AN - SCOPUS:85203264025
SN - 1044-5803
VL - 217
JO - Materials Characterization
JF - Materials Characterization
M1 - 114338
ER -