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- W4324195414 abstract "In this study, austenitic steel and high-Cr ferritic steel were joined by transient liquid phase (TLP) bonding technique with a Fe–Si–B amorphous interlayer. The effects of bonding time (10–60 min) on joints microstructure evolution and tensile behaviors were investigated. On the high-Cr ferritic steel side of the prepared dissimilar TLP joint, Cr2B particles are precipitated at diffusion affected zone (DAZ-α, the α denotes ferrite) and dissolve subsequently when the bonding time is extended to 30 min. In contrast, Cr2B particles are precipitated at the grain boundaries of DAZ-γ (the γ denotes austenite) on the TP347H steel side, which has an apparent orientation relationship with the base metal (BM). Furthermore, when Ni and Cr atoms diffuse from DAZ-γ to isothermal solidification zone (ISZ), a martensitic layer develops at the ISZ/DAZ-γ interface and widens as bonding time increases. Because DAZ-γ is a Ni/Cr-depleted zone with lower austenite stability, deformation-induced martensite forms in DAZ-γ during tensile testing. The in-situ tensile test results and digital image correlation analysis show that strain localization gradually transfers from the interface to the BM-γ during the deformation process, causing the specimen to fracture within TP347H matrix after tensile tests, indicating that TLP bonding achieves sufficient metallurgical bonding. Furthermore, with the extension of bonding time, the grain size of BM-γ decreases first and then increases, which leads to the similar change of the total elongation and the opposite change of the ultimate strength of the joint." @default.
- W4324195414 created "2023-03-15" @default.
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- W4324195414 date "2023-04-01" @default.
- W4324195414 modified "2023-10-16" @default.
- W4324195414 title "Microstructure evolution and tensile behaviors of dissimilar TLP joint of austenitic steel and high-Cr ferritic steel" @default.
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- W4324195414 doi "https://doi.org/10.1016/j.msea.2023.144818" @default.
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