Affiliation:
1. Indian Institute of Technology Bombay
2. Defence Metallurgical Research Laboratory, DRDO
Abstract
Abstract
Single-crystal (SC) nickel-based superalloy castings offer high temperature microstructural stability and superior creep resistance, due to which they are extensively used in the hot sections of gas turbine engines. However, SC nickel-base superalloy components are difficult-to-cut while manufacturing. Worldwide research shows an interest in improving the machinability of the superalloys. The present work is introducing the controlled surface damage on CMSX-4 superalloy through laser surface remelting technique towards the improvement of machinability. The specimens were laser-treated using a constant laser power and scan speed, and varying the positive focal position to get a range of energy densities. The process, structure and property were systematically studied in the fusion zone (FZ). The FZ shape changed from keyhole to conduction mode with increasing focal position. The FZ showed a finer assorted dendritic structure and less severe elemental segregation than the base metal (BM). In keyhole mode penetration, large pores, and multi-directional cracks were observed in the root region. On the other hand, the conductive mode showed only vertical centreline cracks and no significant porosity. The cracks are attributed to thermal stresses and elemental segregation produced during solidification. Microcracking was also observed near the fusion boundary and is attributed to the presence of low melting Mo and Ti-rich eutectics. The FZ away from the cracks showed 10% lower hardness than the BM, which is attributed to the dissolution of 𝛾¢phase. Overall, the laser processing under the given range of energy densities produced a wide variants of surface defects in the FZ.
Highlights:
♣ Laser surface remelting was performed on a single crystal nickel-based superalloy.
♣ The effect of focal position of a CW fiber laser on surface defects and property was investigated.
♣ The working range of energy densities for keyhole and conduction mode were derived.
♣ The surface defects and property of keyhole and conduction mode were evaluated.
Publisher
Research Square Platform LLC
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