Effect of deposition strategy and post processing on microstructure and mechanical properties of serviced Inconel 625 parts repaired using laser directed energy deposition

dc.contributor.authorChaurasia, J.K.
dc.contributor.authorJinoop, A.N.
dc.contributor.authorPaul, C.P.
dc.contributor.authorBindra, K.S.
dc.contributor.authorBalla, V.K.
dc.contributor.authorBontha, S.
dc.date.accessioned2026-02-04T12:25:42Z
dc.date.issued2024
dc.description.abstractIn the present work, an attempt is made to understand and explore the repair capabilities of the Laser Directed Energy Deposition (LDED) process on Nickel based superalloy Inconel 625 (IN625). Samples were extracted from a wrought plate of IN625 and then were subjected to a fatigue test to mimic a component in service for repairing. Further, deposition was carried out on these fatigued tensile sample surfaces i.e., Top, Top & bottom, One side and Both sides. The samples were also solution-treated at 1200 °C for 90 mins. Microstructure and mechanical properties were evaluated and then compared between the different deposition strategies and sample heat-treatment conditions. Tensile properties were compared for all the three sample conditions viz. wrought alloy, as repaired and solution treated. Results indicate sound deposition with minimal porosity in all the four deposition strategies using the LDED process with a mean deposit height of 1.02 ± 0.25 mm. Microstructural analysis revealed mixed dendrite and columnar structure in the case of as-deposited samples whereas, solution treated samples exhibited recrystallized equiaxed grains with the presence of annealing twins. The as-deposited samples show a ductile mode of failure with a maximum ultimate strength of 830 MPa, yield strength of 350 MPa and elongation of 72%. For solution treated samples, a maximum ultimate tensile strength of 620 MPa, yield strength of 270 MPa and elongation of 73% were observed. The strength of the material was found to be highly influenced by the solution treatment. © 2023 Elsevier Ltd
dc.identifier.citationOptics and Laser Technology, 2024, 168, , pp. -
dc.identifier.issn303992
dc.identifier.urihttps://doi.org/10.1016/j.optlastec.2023.109831
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/21498
dc.publisherElsevier Ltd
dc.subjectDuctile fracture
dc.subjectFatigue testing
dc.subjectHeat treatment
dc.subjectNickel alloys
dc.subjectRepair
dc.subjectTensile strength
dc.subjectTensile testing
dc.subjectTextures
dc.subjectYield stress
dc.subjectCharacterization and testing
dc.subjectDeposition process
dc.subjectDeposition strategy
dc.subjectDirected energy
dc.subjectEnergy depositions
dc.subjectInconel 625
dc.subjectLaser directed energy deposition
dc.subjectMicrostructures and mechanical properties
dc.subjectRepair technology
dc.subjectSolution heat treatment
dc.subjectDeposition
dc.titleEffect of deposition strategy and post processing on microstructure and mechanical properties of serviced Inconel 625 parts repaired using laser directed energy deposition

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