Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition

In the current study, functionally graded metal matrix composite structure of Haynes 282 (HY282) superalloy reinforced with SiC particles with varying composition, structure and property in a single deposit is successfully fabricated using laser metal deposition (LMD). Due to the high laser energy u...

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Main Authors: A. Ramakrishnan, G.P. Dinda
Format: Article
Language:English
Published: Elsevier 2019-10-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519303156
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spelling doaj-b8e7dfca54af47a8ab3b6da11af896402020-11-25T00:17:28ZengElsevierMaterials & Design0264-12752019-10-01179Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal depositionA. Ramakrishnan0G.P. Dinda1Department of Mechanical Engineering, Wayne State University, Detroit, MI 48202, USACorresponding author.; Department of Mechanical Engineering, Wayne State University, Detroit, MI 48202, USAIn the current study, functionally graded metal matrix composite structure of Haynes 282 (HY282) superalloy reinforced with SiC particles with varying composition, structure and property in a single deposit is successfully fabricated using laser metal deposition (LMD). Due to the high laser energy used it was found that SiC disassociated profusely into Si and C with HY282 causing several reaction products that included a Si-rich supersaturated austenitic γ matrix, γ′ Ni3(Al,Ti,Si), M(Ti,Mo)C, M23(Cr,Mo,Si)C6, M6(Mo,Ti)C, M7(Cr, Mo)C3 carbides, and γ/γ′ lamellar eutectics. Due to the rapid cooling nature of the process, the graded structure consists of non-equilibrium microstructure, several deleterious secondary phases, and heavy segregation behavior that lead to unwanted properties. Hence a heat-treatment cycle was performed on the as-deposited sample to ensure homogenization of the microstructures. The influence of composition variation in each layer on the microstructure, chemistry, and microhardness were characterized by scanning electron microscopy, energy dispersive spectroscopy, and micro-indentation techniques. The complex phases found in the graded sample in every layer were estimated by calculation of phase diagrams viewpoint to establish the feasibility of using computational thermodynamic simulations to predict the manifestation of the experimentally observed structure. Keywords: Laser metal deposition, Haynes 282, Functionally graded materials, Metal matrix composite, SiC, Nickel-based superalloyhttp://www.sciencedirect.com/science/article/pii/S0264127519303156
collection DOAJ
language English
format Article
sources DOAJ
author A. Ramakrishnan
G.P. Dinda
spellingShingle A. Ramakrishnan
G.P. Dinda
Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition
Materials & Design
author_facet A. Ramakrishnan
G.P. Dinda
author_sort A. Ramakrishnan
title Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition
title_short Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition
title_full Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition
title_fullStr Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition
title_full_unstemmed Functionally graded metal matrix composite of Haynes 282 and SiC fabricated by laser metal deposition
title_sort functionally graded metal matrix composite of haynes 282 and sic fabricated by laser metal deposition
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2019-10-01
description In the current study, functionally graded metal matrix composite structure of Haynes 282 (HY282) superalloy reinforced with SiC particles with varying composition, structure and property in a single deposit is successfully fabricated using laser metal deposition (LMD). Due to the high laser energy used it was found that SiC disassociated profusely into Si and C with HY282 causing several reaction products that included a Si-rich supersaturated austenitic γ matrix, γ′ Ni3(Al,Ti,Si), M(Ti,Mo)C, M23(Cr,Mo,Si)C6, M6(Mo,Ti)C, M7(Cr, Mo)C3 carbides, and γ/γ′ lamellar eutectics. Due to the rapid cooling nature of the process, the graded structure consists of non-equilibrium microstructure, several deleterious secondary phases, and heavy segregation behavior that lead to unwanted properties. Hence a heat-treatment cycle was performed on the as-deposited sample to ensure homogenization of the microstructures. The influence of composition variation in each layer on the microstructure, chemistry, and microhardness were characterized by scanning electron microscopy, energy dispersive spectroscopy, and micro-indentation techniques. The complex phases found in the graded sample in every layer were estimated by calculation of phase diagrams viewpoint to establish the feasibility of using computational thermodynamic simulations to predict the manifestation of the experimentally observed structure. Keywords: Laser metal deposition, Haynes 282, Functionally graded materials, Metal matrix composite, SiC, Nickel-based superalloy
url http://www.sciencedirect.com/science/article/pii/S0264127519303156
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