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Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge

Dispersion-hardened materials based on TiC–AlnCn are alloys with high heat resistance, strength, and durability that can be used in aircraft and rocket technology as a hard lubricant. The titanium-rich composites of the Ti–Al–C system were synthesized via the spark plasma sintering process. Composit...

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Autores principales: Kandrotaitė Janutienė, Rasa, Mažeika, Darius, Dlouhý, Jaromír, Syzonenko, Olha, Torpakov, Andrii, Lipian, Evgenii, Baltušnikas, Arūnas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488492/
https://www.ncbi.nlm.nih.gov/pubmed/37687587
http://dx.doi.org/10.3390/ma16175894
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author Kandrotaitė Janutienė, Rasa
Mažeika, Darius
Dlouhý, Jaromír
Syzonenko, Olha
Torpakov, Andrii
Lipian, Evgenii
Baltušnikas, Arūnas
author_facet Kandrotaitė Janutienė, Rasa
Mažeika, Darius
Dlouhý, Jaromír
Syzonenko, Olha
Torpakov, Andrii
Lipian, Evgenii
Baltušnikas, Arūnas
author_sort Kandrotaitė Janutienė, Rasa
collection PubMed
description Dispersion-hardened materials based on TiC–AlnCn are alloys with high heat resistance, strength, and durability that can be used in aircraft and rocket technology as a hard lubricant. The titanium-rich composites of the Ti–Al–C system were synthesized via the spark plasma sintering process. Composite powder with 85% of Ti, 15% of Al, and MAX-phases was processed using high-voltage electrical discharge in kerosene at a specific energy of 25 MJ kg(−1) to obtain nanosized particles. This method allows us to analyze the most efficient, energy saving, and less waste-generating technological processes producing materials with improved mechanical and physical properties. An Innova test indentation machine was used to determine the hardness of the synthesized composites. The microhardness of Ti–Al–C system samples was determined as approximately 500–600 HV. Scanning electron microscopy and energy-dispersive X-ray spectroscopy were performed to identify the hard titanium matrix reinforced by intermetallic phases and the clusters of carbides. Three types of reinforcing phases were detected existing in the composites—TiC, Al(4)C(3), and Al(3)Ti, as well as a matrix consisting of α- and β-titanium. The lattice parameters of all phases detected in the composites were calculated using Rietveld analysis. It was determined that by increasing the temperature of sintering, the amount of aluminum and carbon increases in the carbides and intermetallic phases, while the amount of titanium decreases.
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spelling pubmed-104884922023-09-09 Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge Kandrotaitė Janutienė, Rasa Mažeika, Darius Dlouhý, Jaromír Syzonenko, Olha Torpakov, Andrii Lipian, Evgenii Baltušnikas, Arūnas Materials (Basel) Article Dispersion-hardened materials based on TiC–AlnCn are alloys with high heat resistance, strength, and durability that can be used in aircraft and rocket technology as a hard lubricant. The titanium-rich composites of the Ti–Al–C system were synthesized via the spark plasma sintering process. Composite powder with 85% of Ti, 15% of Al, and MAX-phases was processed using high-voltage electrical discharge in kerosene at a specific energy of 25 MJ kg(−1) to obtain nanosized particles. This method allows us to analyze the most efficient, energy saving, and less waste-generating technological processes producing materials with improved mechanical and physical properties. An Innova test indentation machine was used to determine the hardness of the synthesized composites. The microhardness of Ti–Al–C system samples was determined as approximately 500–600 HV. Scanning electron microscopy and energy-dispersive X-ray spectroscopy were performed to identify the hard titanium matrix reinforced by intermetallic phases and the clusters of carbides. Three types of reinforcing phases were detected existing in the composites—TiC, Al(4)C(3), and Al(3)Ti, as well as a matrix consisting of α- and β-titanium. The lattice parameters of all phases detected in the composites were calculated using Rietveld analysis. It was determined that by increasing the temperature of sintering, the amount of aluminum and carbon increases in the carbides and intermetallic phases, while the amount of titanium decreases. MDPI 2023-08-29 /pmc/articles/PMC10488492/ /pubmed/37687587 http://dx.doi.org/10.3390/ma16175894 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
Kandrotaitė Janutienė, Rasa
Mažeika, Darius
Dlouhý, Jaromír
Syzonenko, Olha
Torpakov, Andrii
Lipian, Evgenii
Baltušnikas, Arūnas
Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge
title Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge
title_full Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge
title_fullStr Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge
title_full_unstemmed Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge
title_short Investigation of the Microstructure of Sintered Ti–Al–C Composite Powder Materials under High-Voltage Electrical Discharge
title_sort investigation of the microstructure of sintered ti–al–c composite powder materials under high-voltage electrical discharge
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488492/
https://www.ncbi.nlm.nih.gov/pubmed/37687587
http://dx.doi.org/10.3390/ma16175894
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