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The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles

Laser surface alloying with WC particles was used in order to improve the wear resistance of Inconel(®)600-alloy. The applied processing parameters ensured appropriate conditions for the production of composite layers enriched with WC particles that did not melt during the process. As a consequence,...

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Autores principales: Dziarski, Piotr, Makuch, Natalia, Kulka, Michał
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10095621/
https://www.ncbi.nlm.nih.gov/pubmed/37048913
http://dx.doi.org/10.3390/ma16072619
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author Dziarski, Piotr
Makuch, Natalia
Kulka, Michał
author_facet Dziarski, Piotr
Makuch, Natalia
Kulka, Michał
author_sort Dziarski, Piotr
collection PubMed
description Laser surface alloying with WC particles was used in order to improve the wear resistance of Inconel(®)600-alloy. The applied processing parameters ensured appropriate conditions for the production of composite layers enriched with WC particles that did not melt during the process. As a consequence, the produced layers contained globular shaped WC particles that were well bonded in the matrix. The WC particles were characterized by high hardness H(IT) = 31.25 GPa and a high Young’s modulus E(IT) = 609.33 GPa determined by nanoindentation. The most important parameter influencing the thickness of the layer, the percentage of WC particles in the layer and the wear resistance of the produced layers was the power of the laser beam. Three values of laser beam power were used: 1.3 kW, 1.56 kW, and 1.82 kW. An increase in the laser beam power resulted in an increased thickness of the layer from 435 µm to 685 µm. Simultaneously, when the power of the laser beam was higher, the depth of re-melting of the substrate material increased. This was the reason for a decrease in the percentage of WC particles in the composite layer. The layer produced by laser beam power of 1.3 kW contained 20.59% of WC particles, whereas the highest power of the laser beam (1.82 kW) ensured a percentage of WC particles of about 9.46%. As a result, the increase in the laser beam power was the reason for the reduction in the wear resistance of the composite layer. The lowest mass wear intensity factor (I(mw) = 6.4 mg·cm(−2)·h(−1)) characterized the layer produced at laser beam power of 1.3 kW, and the highest I(mw) (18.5 mg·cm(−2)·h(−1)) was obtained for the layer produced with a laser beam power of 1.82 kW. However, all the produced composite layers contained WC particles, which ensured improved wear resistance when compared to the Inconel(®)600-alloy without the layer (I(mw) = 60.9 mg·cm(−2)·h(−1)).
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spelling pubmed-100956212023-04-13 The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles Dziarski, Piotr Makuch, Natalia Kulka, Michał Materials (Basel) Article Laser surface alloying with WC particles was used in order to improve the wear resistance of Inconel(®)600-alloy. The applied processing parameters ensured appropriate conditions for the production of composite layers enriched with WC particles that did not melt during the process. As a consequence, the produced layers contained globular shaped WC particles that were well bonded in the matrix. The WC particles were characterized by high hardness H(IT) = 31.25 GPa and a high Young’s modulus E(IT) = 609.33 GPa determined by nanoindentation. The most important parameter influencing the thickness of the layer, the percentage of WC particles in the layer and the wear resistance of the produced layers was the power of the laser beam. Three values of laser beam power were used: 1.3 kW, 1.56 kW, and 1.82 kW. An increase in the laser beam power resulted in an increased thickness of the layer from 435 µm to 685 µm. Simultaneously, when the power of the laser beam was higher, the depth of re-melting of the substrate material increased. This was the reason for a decrease in the percentage of WC particles in the composite layer. The layer produced by laser beam power of 1.3 kW contained 20.59% of WC particles, whereas the highest power of the laser beam (1.82 kW) ensured a percentage of WC particles of about 9.46%. As a result, the increase in the laser beam power was the reason for the reduction in the wear resistance of the composite layer. The lowest mass wear intensity factor (I(mw) = 6.4 mg·cm(−2)·h(−1)) characterized the layer produced at laser beam power of 1.3 kW, and the highest I(mw) (18.5 mg·cm(−2)·h(−1)) was obtained for the layer produced with a laser beam power of 1.82 kW. However, all the produced composite layers contained WC particles, which ensured improved wear resistance when compared to the Inconel(®)600-alloy without the layer (I(mw) = 60.9 mg·cm(−2)·h(−1)). MDPI 2023-03-25 /pmc/articles/PMC10095621/ /pubmed/37048913 http://dx.doi.org/10.3390/ma16072619 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dziarski, Piotr
Makuch, Natalia
Kulka, Michał
The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles
title The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles
title_full The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles
title_fullStr The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles
title_full_unstemmed The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles
title_short The Impact of Laser Beam Power on the Microstructure and Some Mechanical Properties of Laser-Alloyed Inconel(®)600 with WC Particles
title_sort impact of laser beam power on the microstructure and some mechanical properties of laser-alloyed inconel(®)600 with wc particles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10095621/
https://www.ncbi.nlm.nih.gov/pubmed/37048913
http://dx.doi.org/10.3390/ma16072619
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