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3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading

This study developed microstructure-based finite element (FE) models to investigate the behavior of cold-sprayed aluminum–alumina (Al-Al(2)O(3)) metal matrix composite (MMC) coatings subject to indentation and quasi-static compression loading. Based on microstructural features (i.e., particle weight...

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Detalles Bibliográficos
Autores principales: Sayahlatifi, Saman, Shao, Chenwei, McDonald, André, Hogan, James
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer US 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8491765/
http://dx.doi.org/10.1007/s11666-021-01260-5
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author Sayahlatifi, Saman
Shao, Chenwei
McDonald, André
Hogan, James
author_facet Sayahlatifi, Saman
Shao, Chenwei
McDonald, André
Hogan, James
author_sort Sayahlatifi, Saman
collection PubMed
description This study developed microstructure-based finite element (FE) models to investigate the behavior of cold-sprayed aluminum–alumina (Al-Al(2)O(3)) metal matrix composite (MMC) coatings subject to indentation and quasi-static compression loading. Based on microstructural features (i.e., particle weight fraction, particle size, and porosity) of the MMC coatings, 3D representative volume elements (RVEs) were generated by using Digimat software and then imported into ABAQUS/Explicit. State-of-the-art physics-based modeling approaches were incorporated into the model to account for particle cracking, interface debonding, and ductile failure of the matrix. This allowed for analysis and informing on the deformation and failure responses. The model was validated with experimental results for cold-sprayed Al-34 wt.% Al(2)O(3) and Al-46 wt.% Al(2)O(3) metal matrix composite coatings under quasi-static compression by comparing the stress versus strain histories and observed failure mechanisms (e.g., matrix ductile failure). The results showed that the computational framework is able to capture the response of this cold-sprayed material system under compression and indentation, both qualitatively and quantitatively. The outcomes of this work have implications for extending the model to materials design and for applications involving different types of loading in real-world application (e.g., erosion and fatigue).
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spelling pubmed-84917652021-10-06 3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading Sayahlatifi, Saman Shao, Chenwei McDonald, André Hogan, James J Therm Spray Tech Peer Reviewed This study developed microstructure-based finite element (FE) models to investigate the behavior of cold-sprayed aluminum–alumina (Al-Al(2)O(3)) metal matrix composite (MMC) coatings subject to indentation and quasi-static compression loading. Based on microstructural features (i.e., particle weight fraction, particle size, and porosity) of the MMC coatings, 3D representative volume elements (RVEs) were generated by using Digimat software and then imported into ABAQUS/Explicit. State-of-the-art physics-based modeling approaches were incorporated into the model to account for particle cracking, interface debonding, and ductile failure of the matrix. This allowed for analysis and informing on the deformation and failure responses. The model was validated with experimental results for cold-sprayed Al-34 wt.% Al(2)O(3) and Al-46 wt.% Al(2)O(3) metal matrix composite coatings under quasi-static compression by comparing the stress versus strain histories and observed failure mechanisms (e.g., matrix ductile failure). The results showed that the computational framework is able to capture the response of this cold-sprayed material system under compression and indentation, both qualitatively and quantitatively. The outcomes of this work have implications for extending the model to materials design and for applications involving different types of loading in real-world application (e.g., erosion and fatigue). Springer US 2021-10-05 2022 /pmc/articles/PMC8491765/ http://dx.doi.org/10.1007/s11666-021-01260-5 Text en © ASM International 2021 This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Peer Reviewed
Sayahlatifi, Saman
Shao, Chenwei
McDonald, André
Hogan, James
3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading
title 3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading
title_full 3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading
title_fullStr 3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading
title_full_unstemmed 3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading
title_short 3D Microstructure-Based Finite Element Simulation of Cold-Sprayed Al-Al(2)O(3) Composite Coatings Under Quasi-Static Compression and Indentation Loading
title_sort 3d microstructure-based finite element simulation of cold-sprayed al-al(2)o(3) composite coatings under quasi-static compression and indentation loading
topic Peer Reviewed
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8491765/
http://dx.doi.org/10.1007/s11666-021-01260-5
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