Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates

The influence of particle impact temperature and size on adhesion of soft particle/hard substrate material in cold spray has been scarcely studied. While the relationship between particle impact conditions and particle/substrate bonding is commonly established through FEM studies, they typically lac...

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Published in:Journal of Thermal Spray Technology
Main Authors: Nastic, A., Jodoin, B., Legoux, J.-G., Poirier, D.
Format: Article in Journal/Newspaper
Language:English
Published: Springer 2021
Subjects:
Online Access:https://doi.org/10.1007/s11666-021-01272-1
https://nrc-publications.canada.ca/eng/view/author/version/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764
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spelling ftnrccanada:oai:cisti-icist.nrc-cnrc.ca:cistinparc:6c9c8df7-4445-486e-9c87-ea7568ea1764 2023-05-15T18:22:52+02:00 Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates Nastic, A. Jodoin, B. Legoux, J.-G. Poirier, D. 2021-11-22 text https://doi.org/10.1007/s11666-021-01272-1 https://nrc-publications.canada.ca/eng/view/author/version/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764 https://nrc-publications.canada.ca/eng/view/object/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764 https://nrc-publications.canada.ca/fra/voir/objet/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764 eng eng Springer issn:1059-9630 issn:1544-1016 Journal of Thermal Spray Technology, Publication date: 2021-11-22 doi:10.1007/s11666-021-01272-1 impact temperature melt front metallic bonding oxide layer peening pressure-dependent melting article 2021 ftnrccanada https://doi.org/10.1007/s11666-021-01272-1 2021-12-12T00:01:28Z The influence of particle impact temperature and size on adhesion of soft particle/hard substrate material in cold spray has been scarcely studied. While the relationship between particle impact conditions and particle/substrate bonding is commonly established through FEM studies, they typically lack comparison to experimental data. In the current study, characterization was performed by post-mortem observation of removed adhered particles and collected rebounded particles contact surfaces. Observations are correlated to interfacial pressure and temperature using FEM, otherwise impossible to measure in situ. The influence of pressure and its temporal evolution with particle deformation on melting and bonding is evaluated. Evidence of anisotropic particle deformation associated with microstructural orientation and grain geometrical features has been observed. Experimental evidence confirms that the particle south pole experiences restricted deformation as the original powder grain morphology was observed even after impact. Interfacial melt features have been detected and the melt zone generation, propagation, stagnation and regression tracked through FEM have shown important influence on single impact adhesion processes. Observed metallic bonding features and FEM indicate that increasing particle velocity, i.e., decreasing particle size, accelerates particle bonding processes to occur within tens of nanoseconds. Contact compressive pressure and interfacial expansion increase with particle increasing velocity and temperature. Peer reviewed: Yes NRC publication: Yes Article in Journal/Newspaper South pole National Research Council Canada: NRC Publications Archive South Pole Journal of Thermal Spray Technology 30 8 2013 2033
institution Open Polar
collection National Research Council Canada: NRC Publications Archive
op_collection_id ftnrccanada
language English
topic impact temperature
melt front
metallic bonding
oxide layer
peening
pressure-dependent melting
spellingShingle impact temperature
melt front
metallic bonding
oxide layer
peening
pressure-dependent melting
Nastic, A.
Jodoin, B.
Legoux, J.-G.
Poirier, D.
Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
topic_facet impact temperature
melt front
metallic bonding
oxide layer
peening
pressure-dependent melting
description The influence of particle impact temperature and size on adhesion of soft particle/hard substrate material in cold spray has been scarcely studied. While the relationship between particle impact conditions and particle/substrate bonding is commonly established through FEM studies, they typically lack comparison to experimental data. In the current study, characterization was performed by post-mortem observation of removed adhered particles and collected rebounded particles contact surfaces. Observations are correlated to interfacial pressure and temperature using FEM, otherwise impossible to measure in situ. The influence of pressure and its temporal evolution with particle deformation on melting and bonding is evaluated. Evidence of anisotropic particle deformation associated with microstructural orientation and grain geometrical features has been observed. Experimental evidence confirms that the particle south pole experiences restricted deformation as the original powder grain morphology was observed even after impact. Interfacial melt features have been detected and the melt zone generation, propagation, stagnation and regression tracked through FEM have shown important influence on single impact adhesion processes. Observed metallic bonding features and FEM indicate that increasing particle velocity, i.e., decreasing particle size, accelerates particle bonding processes to occur within tens of nanoseconds. Contact compressive pressure and interfacial expansion increase with particle increasing velocity and temperature. Peer reviewed: Yes NRC publication: Yes
format Article in Journal/Newspaper
author Nastic, A.
Jodoin, B.
Legoux, J.-G.
Poirier, D.
author_facet Nastic, A.
Jodoin, B.
Legoux, J.-G.
Poirier, D.
author_sort Nastic, A.
title Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
title_short Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
title_full Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
title_fullStr Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
title_full_unstemmed Particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
title_sort particle impact characteristics influence on cold spray bonding: investigation of interfacial phenomena for soft particles on hard substrates
publisher Springer
publishDate 2021
url https://doi.org/10.1007/s11666-021-01272-1
https://nrc-publications.canada.ca/eng/view/author/version/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764
https://nrc-publications.canada.ca/eng/view/object/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764
https://nrc-publications.canada.ca/fra/voir/objet/?id=6c9c8df7-4445-486e-9c87-ea7568ea1764
geographic South Pole
geographic_facet South Pole
genre South pole
genre_facet South pole
op_relation issn:1059-9630
issn:1544-1016
Journal of Thermal Spray Technology, Publication date: 2021-11-22
doi:10.1007/s11666-021-01272-1
op_doi https://doi.org/10.1007/s11666-021-01272-1
container_title Journal of Thermal Spray Technology
container_volume 30
container_issue 8
container_start_page 2013
op_container_end_page 2033
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