TY - JOUR
T1 - BNi2-barrier regulated microstructural evolution and strengthening mechanism of powder metallurgy CuCrNb/304SS brazed joints
AU - Huang, Xi
AU - Chen, Haiyan
AU - Pan, Zhaoyi
AU - Mao, Yue
AU - Wang, Yuzhuo
AU - Chi, Jinze
AU - Wang, Pengcheng
AU - Song, Xiaoguo
AU - Long, Weimin
AU - Li, Wenya
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/9
Y1 - 2026/9
N2 - Precise control of interfacial metallurgy is a critical challenge in brazing powder metallurgy CuCrNb (PM-CCN) for aerospace applications. An interfacial engineering strategy using AgCu filler with an amorphous BNi2 barrier layer was proposed. The effects of holding time (10–25 min) at 940 °C on microstructural evolution and mechanical properties of PM-CCN/304 stainless steel (304SS) joints were systematically investigated. Results indicated that direct brazing led to full penetration of the AgCu filler into the PM-CCN matrix, forming an uncontrolled mixed zone with a maximum depth of 313.4 μm at 25 min. Conversely, the BNi2 barrier induced an in-situ composite layer consisting of γ-Ni and CrB intermetallic compounds (IMCs), accompanied by a Ni-Cu solid-solution layer. This reaction-derived architecture effectively suppressed excessive filler diffusion and stabilized the seam width within 160.7–163.8 μm. Consequently, the BNi2-added joint achieved a peak shear strength of 233.14 MPa at 10 min, representing a 28.8% increase over the direct-brazed counterpart. Prolonging the holding time to 25 min, however, triggered barrier disintegration due to excessive Ni diffusion, shifting the fracture path from the ductile Ag-Cu seam back to the disordered penetration zone. This fracture mode transition, driven by the loss of barrier integrity, significantly degraded the mechanical properties. Overall, this study clarifies the underlying regulation mechanism and provides a theoretical foundation for high-reliability aerospace brazing.
AB - Precise control of interfacial metallurgy is a critical challenge in brazing powder metallurgy CuCrNb (PM-CCN) for aerospace applications. An interfacial engineering strategy using AgCu filler with an amorphous BNi2 barrier layer was proposed. The effects of holding time (10–25 min) at 940 °C on microstructural evolution and mechanical properties of PM-CCN/304 stainless steel (304SS) joints were systematically investigated. Results indicated that direct brazing led to full penetration of the AgCu filler into the PM-CCN matrix, forming an uncontrolled mixed zone with a maximum depth of 313.4 μm at 25 min. Conversely, the BNi2 barrier induced an in-situ composite layer consisting of γ-Ni and CrB intermetallic compounds (IMCs), accompanied by a Ni-Cu solid-solution layer. This reaction-derived architecture effectively suppressed excessive filler diffusion and stabilized the seam width within 160.7–163.8 μm. Consequently, the BNi2-added joint achieved a peak shear strength of 233.14 MPa at 10 min, representing a 28.8% increase over the direct-brazed counterpart. Prolonging the holding time to 25 min, however, triggered barrier disintegration due to excessive Ni diffusion, shifting the fracture path from the ductile Ag-Cu seam back to the disordered penetration zone. This fracture mode transition, driven by the loss of barrier integrity, significantly degraded the mechanical properties. Overall, this study clarifies the underlying regulation mechanism and provides a theoretical foundation for high-reliability aerospace brazing.
KW - BNi2 barrier layer
KW - Brazing
KW - Mechanical properties
KW - Microstructural evolution
KW - Powder metallurgy CuCrNb
UR - https://www.scopus.com/pages/publications/105040540049
U2 - 10.1016/j.intermet.2026.109353
DO - 10.1016/j.intermet.2026.109353
M3 - 文章
AN - SCOPUS:105040540049
SN - 0966-9795
VL - 196
JO - Intermetallics
JF - Intermetallics
M1 - 109353
ER -