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Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition

An important direction in the development of additive technologies is associated with the addition of ceramic particles (oxide, carbide, boride, and nitride ceramics) to metal powders. The prediction of the physical and mechanical characteristics of SiC-particle-reinforced composite materials (PRCMs...

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Autores principales: Magidov, Ilya, Mikhaylovskiy, Konstanitin, Shalnova, Svetlana, Topalov, Ilya, Gushchina, Marina, Zherebtsov, Sergey, Klimova-Korsmik, Olga
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419481/
https://www.ncbi.nlm.nih.gov/pubmed/37569937
http://dx.doi.org/10.3390/ma16155233
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author Magidov, Ilya
Mikhaylovskiy, Konstanitin
Shalnova, Svetlana
Topalov, Ilya
Gushchina, Marina
Zherebtsov, Sergey
Klimova-Korsmik, Olga
author_facet Magidov, Ilya
Mikhaylovskiy, Konstanitin
Shalnova, Svetlana
Topalov, Ilya
Gushchina, Marina
Zherebtsov, Sergey
Klimova-Korsmik, Olga
author_sort Magidov, Ilya
collection PubMed
description An important direction in the development of additive technologies is associated with the addition of ceramic particles (oxide, carbide, boride, and nitride ceramics) to metal powders. The prediction of the physical and mechanical characteristics of SiC-particle-reinforced composite materials (PRCMs) in comparison with experimental results was studied. A near-α Ti-4.25Al-2V titanium-alloy-based composite reinforced by 1 vol.% of SiC ceramic particles was produced using laser direct energy deposition. A multiscale modeling approach at the micro and macro levels was applied. At the micro level, the toughness and strength characteristics for a temperature interval of T = 20–450 °C were predicted using a representative volume element of PRCM with the nearly real shape of SiC particles. At the macro level, the features of plastic deformation and fracture of the PRCM were predicted by numerical modeling using the commercial software Digimat Student Edition ver. 2022.4 and Ansys Student 2023 R2. The addition of SiC particles was found to improve the physical and mechanical properties in the whole temperature range. The results of the numerical modeling were consistent with the experimental data (the deviation did not exceed 10%). The proposed approach for predicting the physical and mechanical properties of Ti-4.25Al-2V/SiC can also be used for other PRCMs obtained by laser direct energy deposition.
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spelling pubmed-104194812023-08-12 Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition Magidov, Ilya Mikhaylovskiy, Konstanitin Shalnova, Svetlana Topalov, Ilya Gushchina, Marina Zherebtsov, Sergey Klimova-Korsmik, Olga Materials (Basel) Article An important direction in the development of additive technologies is associated with the addition of ceramic particles (oxide, carbide, boride, and nitride ceramics) to metal powders. The prediction of the physical and mechanical characteristics of SiC-particle-reinforced composite materials (PRCMs) in comparison with experimental results was studied. A near-α Ti-4.25Al-2V titanium-alloy-based composite reinforced by 1 vol.% of SiC ceramic particles was produced using laser direct energy deposition. A multiscale modeling approach at the micro and macro levels was applied. At the micro level, the toughness and strength characteristics for a temperature interval of T = 20–450 °C were predicted using a representative volume element of PRCM with the nearly real shape of SiC particles. At the macro level, the features of plastic deformation and fracture of the PRCM were predicted by numerical modeling using the commercial software Digimat Student Edition ver. 2022.4 and Ansys Student 2023 R2. The addition of SiC particles was found to improve the physical and mechanical properties in the whole temperature range. The results of the numerical modeling were consistent with the experimental data (the deviation did not exceed 10%). The proposed approach for predicting the physical and mechanical properties of Ti-4.25Al-2V/SiC can also be used for other PRCMs obtained by laser direct energy deposition. MDPI 2023-07-25 /pmc/articles/PMC10419481/ /pubmed/37569937 http://dx.doi.org/10.3390/ma16155233 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
Magidov, Ilya
Mikhaylovskiy, Konstanitin
Shalnova, Svetlana
Topalov, Ilya
Gushchina, Marina
Zherebtsov, Sergey
Klimova-Korsmik, Olga
Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition
title Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition
title_full Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition
title_fullStr Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition
title_full_unstemmed Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition
title_short Prediction and Experimental Evaluation of Mechanical Properties of SiC-Reinforced Ti-4.25Al-2V Matrix Composites Produced by Laser Direct Energy Deposition
title_sort prediction and experimental evaluation of mechanical properties of sic-reinforced ti-4.25al-2v matrix composites produced by laser direct energy deposition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419481/
https://www.ncbi.nlm.nih.gov/pubmed/37569937
http://dx.doi.org/10.3390/ma16155233
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