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Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure

A Ni–17Mo–7Cr-based superalloy was laser surface-modified to improve its tribological properties. Si particles were employed as coating materials. Si melted on the surface of the alloy during the process, triggering the formation of Mo(6)Ni(6)C carbides and Ni–Si intermetallics. A defect-free coatin...

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Autores principales: Li, Yuebing, He, Yanming, Lu, Chuanyang, Zheng, Wenjian, Yang, Jianguo, Wang, Donghong, Wang, Limei, Sun, Yuan, Gao, Zengliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539133/
https://www.ncbi.nlm.nih.gov/pubmed/31058808
http://dx.doi.org/10.3390/ma12091439
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author Li, Yuebing
He, Yanming
Lu, Chuanyang
Zheng, Wenjian
Yang, Jianguo
Wang, Donghong
Wang, Limei
Sun, Yuan
Gao, Zengliang
author_facet Li, Yuebing
He, Yanming
Lu, Chuanyang
Zheng, Wenjian
Yang, Jianguo
Wang, Donghong
Wang, Limei
Sun, Yuan
Gao, Zengliang
author_sort Li, Yuebing
collection PubMed
description A Ni–17Mo–7Cr-based superalloy was laser surface-modified to improve its tribological properties. Si particles were employed as coating materials. Si melted on the surface of the alloy during the process, triggering the formation of Mo(6)Ni(6)C carbides and Ni–Si intermetallics. A defect-free coating obtained was mostly made up of primary Mo(6)Ni(6)C and γ-Ni(31)Si(12), as well as a eutectic structure of β(1)-Ni(3)Si and α-Ni-based solid solution (α-Ni (s.s)). The volume fraction of hard reinforcements (Mo(6)Ni(6)C, γ-Ni(31)Si(12), and β(1)-Ni(3)Si) reached up to 85% in the coating. High-temperature microstructural stability of the coating was investigated by aging the coating at 1073 K for 240–480 h, to reveal its microstructural evolution. In addition, the mechanical performance of the coating was investigated. The nanoscale elastic modulus and hardness of Mo(6)Ni(6)C, γ-Ni(31)Si(12), and α-Ni (s.s) were characterized using the nanoindentation tests. The nanoscratch tests were performed to measure the local wear resistance of the coating. Lastly, the Vickers hardness distribution across the cross-section of the coating before and after thermal exposure was compared. The work performed provides basic information understanding the microstructural evolution and mechanical performance of laser-induced coatings on Ni-based superalloys.
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spelling pubmed-65391332019-06-05 Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure Li, Yuebing He, Yanming Lu, Chuanyang Zheng, Wenjian Yang, Jianguo Wang, Donghong Wang, Limei Sun, Yuan Gao, Zengliang Materials (Basel) Article A Ni–17Mo–7Cr-based superalloy was laser surface-modified to improve its tribological properties. Si particles were employed as coating materials. Si melted on the surface of the alloy during the process, triggering the formation of Mo(6)Ni(6)C carbides and Ni–Si intermetallics. A defect-free coating obtained was mostly made up of primary Mo(6)Ni(6)C and γ-Ni(31)Si(12), as well as a eutectic structure of β(1)-Ni(3)Si and α-Ni-based solid solution (α-Ni (s.s)). The volume fraction of hard reinforcements (Mo(6)Ni(6)C, γ-Ni(31)Si(12), and β(1)-Ni(3)Si) reached up to 85% in the coating. High-temperature microstructural stability of the coating was investigated by aging the coating at 1073 K for 240–480 h, to reveal its microstructural evolution. In addition, the mechanical performance of the coating was investigated. The nanoscale elastic modulus and hardness of Mo(6)Ni(6)C, γ-Ni(31)Si(12), and α-Ni (s.s) were characterized using the nanoindentation tests. The nanoscratch tests were performed to measure the local wear resistance of the coating. Lastly, the Vickers hardness distribution across the cross-section of the coating before and after thermal exposure was compared. The work performed provides basic information understanding the microstructural evolution and mechanical performance of laser-induced coatings on Ni-based superalloys. MDPI 2019-05-03 /pmc/articles/PMC6539133/ /pubmed/31058808 http://dx.doi.org/10.3390/ma12091439 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Yuebing
He, Yanming
Lu, Chuanyang
Zheng, Wenjian
Yang, Jianguo
Wang, Donghong
Wang, Limei
Sun, Yuan
Gao, Zengliang
Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure
title Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure
title_full Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure
title_fullStr Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure
title_full_unstemmed Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure
title_short Microstructural Evolution and Mechanical Evaluation of a Laser-Induced Composite Coating on a Ni-Based Superalloy during Thermal Exposure
title_sort microstructural evolution and mechanical evaluation of a laser-induced composite coating on a ni-based superalloy during thermal exposure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539133/
https://www.ncbi.nlm.nih.gov/pubmed/31058808
http://dx.doi.org/10.3390/ma12091439
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