TY - JOUR
T1 - Achieving metallurgical and mechanical compatibility in dissimilar Fe-Cr-Ni alloys via compositionally graded interfaces fabricated by underwater laser dual-wire directed energy deposition
AU - Li, Congwei
AU - Zhu, Jialei
AU - Zeng, Caiyou
AU - Cui, Lei
AU - Cong, Baoqiang
AU - Zhang, Hongtao
AU - Deng, Caiyan
AU - Jiao, Xiangdong
N1 - Publisher Copyright:
© 2026 Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/7
Y1 - 2026/7
N2 - Ensuring reliable in-service repair of pressurized water reactor (PWR) components demands metallic cladding that can withstand simultaneous high-temperature loading and aggressive aqueous corrosion. Conventional direct underwater deposition of Ni-based alloys onto duplex stainless steels is widely reported to be challenged by interfacial cracking and performance degradation induced by dilution of Ni/Cr element. In this work, a local-dry underwater laser-wire directed energy deposition (LD-ULDED) strategy incorporating dual-wire co-feeding is developed to fabricate compositionally graded Fe-Cr-Ni alloy cladding for dissimilar-metal repair. By actively regulating the feeding ratio between Fe-based (ER2209) and Ni-based (ERNiCrFe-7A) wires, a continuous chemical gradient is established, enabling a transition in phase constitution, solidification morphology, and mechanical response. Microstructural characterization reveals a progressive evolution from ferrite-austenite duplex structures to homogeneous austenitic dendrites, which promotes metallurgical bonding and mechanical continuity across graded interlayers. High-temperature (350 ℃) tensile testing demonstrates a non-monotonic, layer-dependent mechanical response along the compositional gradient. The 75% IN690 layer exhibits the lowest tensile strength and mixed fracture characteristics due to M23C6 precipitation, grain-boundary migration, and localized strain concentration, whereas the fully Ni-rich layer achieves the highest ductility (46.1%) with a more uniform strain distribution. Electrochemical testing in boric acid-NaCl solution further shows that the 25% IN690 layer provides the most favorable corrosion resistance, benefiting from a balanced Fe-Cr-Ni chemistry and refined dual-phase microstructure. These results indicate that the dual-wire LD-ULDED strategy establishes a crack-free compositionally graded Fe-Cr-Ni cladding with spatially differentiated mechanical and corrosion responses, while also identifying a property-sensitive intermediate composition window in the present gradient path.
AB - Ensuring reliable in-service repair of pressurized water reactor (PWR) components demands metallic cladding that can withstand simultaneous high-temperature loading and aggressive aqueous corrosion. Conventional direct underwater deposition of Ni-based alloys onto duplex stainless steels is widely reported to be challenged by interfacial cracking and performance degradation induced by dilution of Ni/Cr element. In this work, a local-dry underwater laser-wire directed energy deposition (LD-ULDED) strategy incorporating dual-wire co-feeding is developed to fabricate compositionally graded Fe-Cr-Ni alloy cladding for dissimilar-metal repair. By actively regulating the feeding ratio between Fe-based (ER2209) and Ni-based (ERNiCrFe-7A) wires, a continuous chemical gradient is established, enabling a transition in phase constitution, solidification morphology, and mechanical response. Microstructural characterization reveals a progressive evolution from ferrite-austenite duplex structures to homogeneous austenitic dendrites, which promotes metallurgical bonding and mechanical continuity across graded interlayers. High-temperature (350 ℃) tensile testing demonstrates a non-monotonic, layer-dependent mechanical response along the compositional gradient. The 75% IN690 layer exhibits the lowest tensile strength and mixed fracture characteristics due to M23C6 precipitation, grain-boundary migration, and localized strain concentration, whereas the fully Ni-rich layer achieves the highest ductility (46.1%) with a more uniform strain distribution. Electrochemical testing in boric acid-NaCl solution further shows that the 25% IN690 layer provides the most favorable corrosion resistance, benefiting from a balanced Fe-Cr-Ni chemistry and refined dual-phase microstructure. These results indicate that the dual-wire LD-ULDED strategy establishes a crack-free compositionally graded Fe-Cr-Ni cladding with spatially differentiated mechanical and corrosion responses, while also identifying a property-sensitive intermediate composition window in the present gradient path.
KW - Compositionally graded material
KW - Corrosion behavior
KW - Fe-Cr-Ni alloy
KW - High-temperature ductility
KW - Underwater directed energy deposition
UR - https://www.scopus.com/pages/publications/105038693457
U2 - 10.1016/j.jmatprotec.2026.119335
DO - 10.1016/j.jmatprotec.2026.119335
M3 - 文章
AN - SCOPUS:105038693457
SN - 0924-0136
VL - 353
JO - Journal of Materials Processing Technology
JF - Journal of Materials Processing Technology
M1 - 119335
ER -