Influence of the Chemical Composition on the Solidification Path, Strengthening Mechanisms and Hardness of Ni-Cr-Si-Fe-B Self-Fluxing Alloys Obtained by Laser-Directed Energy Deposition

Author:

Pereira Juan Carlos1,Taboada Mari Carmen1,Niklas Andrea2,Rayón Emilio3ORCID,Rocchi Jerome4

Affiliation:

1. LORTEK Technological Centre, Basque Research and Technology Alliance BRTA, Arranomendia Kalea 4A, 20240 Ordizia, Gipuzkoa, Spain

2. Fundación AZTERLAN Metallurgical Research Centre, Basque Research and Technology Alliance BRTA, Aliendalde Auzunea 6, 48200 Durango, Bizkaia, Spain

3. Instituto de Tecnología de Materiales (ITM), Universitat Politècnica de València, Cami de Vera s/n, 46022 Valencia, Valencia, Spain

4. Liebherr Aerospace Toulouse SAS, 408, Avenue des Etats-Unis, BP 52010, CEDEX 2, 31016 Toulouse, France

Abstract

Nickel-based Ni-Cr-Si-B self-fluxing alloys are excellent candidates to replace cobalt-based alloys in aeronautical components. In this work, metal additive manufacturing by directed energy deposition using a laser beam (DED-LB, also known as LMD) and gas-atomized powders as a material feedstock is presented as a potential manufacturing route for the complex processing of these alloys. This research deals with the advanced material characterization of these alloys obtained by LMD and the study and understanding of their solidification paths and strengthening mechanisms. The as-built microstructure, the Vickers hardness at room temperature and at high temperatures, the nanoindentation hardness and elastic modulus of the main phases and precipitates, and the strengthening mechanisms were studied in bulk cylinders manufactured under different chemical composition grades and DED-LB/p process parameter sets (slow, normal, and fast deposition speeds), with the aim of determining the influence of the chemical composition in commercial Ni-Cr-Si-Fe-B alloys. The hardening of Ni-Cr-Si-Fe-B alloys obtained by LMD is a combination of the solid solution hardening of gamma nickel dendrites and eutectics and the contribution of the precipitation hardening of small chromium-rich carbides and hard borides evenly distributed in the as-built microstructure.

Funder

Clean Sky 2 Joint Undertaking

European Union’s Horizon 2020 research and innovation program

Publisher

MDPI AG

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering,Mechanics of Materials

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