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Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites

Titanium metal matrix composites/TMMCs are reinforced ceramic reinforcements that have been developed and used in the automotive, biological, implants, and aerospace fields. At high temperatures, TMMCs can provide up to 50% weight reduction compared to monolithic super alloys while maintaining compa...

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Autores principales: Gemeda, Birhane Assefa, Sinha, Devendra Kumar, Singh, Gyanendra Kumar, Alghtani, Abdulaziz H., Tirth, Vineet, Algahtani, Ali, Mengesha, Getinet Asrat, Ahmed, Gulam Mohammed Sayeed, Hossain, Nazia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9413636/
https://www.ncbi.nlm.nih.gov/pubmed/36013676
http://dx.doi.org/10.3390/ma15165525
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author Gemeda, Birhane Assefa
Sinha, Devendra Kumar
Singh, Gyanendra Kumar
Alghtani, Abdulaziz H.
Tirth, Vineet
Algahtani, Ali
Mengesha, Getinet Asrat
Ahmed, Gulam Mohammed Sayeed
Hossain, Nazia
author_facet Gemeda, Birhane Assefa
Sinha, Devendra Kumar
Singh, Gyanendra Kumar
Alghtani, Abdulaziz H.
Tirth, Vineet
Algahtani, Ali
Mengesha, Getinet Asrat
Ahmed, Gulam Mohammed Sayeed
Hossain, Nazia
author_sort Gemeda, Birhane Assefa
collection PubMed
description Titanium metal matrix composites/TMMCs are reinforced ceramic reinforcements that have been developed and used in the automotive, biological, implants, and aerospace fields. At high temperatures, TMMCs can provide up to 50% weight reduction compared to monolithic super alloys while maintaining comparable quality or state of strength. The objective of this research was the analysis and evaluation of the effect/influence of different sintering temperatures, reinforcement size dependence of mechanical properties, and fortification mechanisms on the particle size distribution of B(4)C, SiC, and ZrO(2) reinforced TMMCs that were produced and fabricated by powder metallurgy/PM. SEM, XRD, a Rockwell hardness tester, and the Archimedes principle were used in this analysis. The composites’ hardness, approximation, tensile, yielding, and ultimate strength were all increased. As the composite was reinforced with low-density ceramics material and particles, its density decreased. The volume and void content in all the synthesized specimens is below 1%; this is the result of good sample densification, mechanical properties and uniform distribution of the reinforced particle samples; 5% B(4)C, 12.5% SiC, 7.5% ZrO(2), 75% Ti develop higher mechanical properties, such as higher hardness, approximation tensile, yielding, and ultimate strength and low porosity.
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spelling pubmed-94136362022-08-27 Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites Gemeda, Birhane Assefa Sinha, Devendra Kumar Singh, Gyanendra Kumar Alghtani, Abdulaziz H. Tirth, Vineet Algahtani, Ali Mengesha, Getinet Asrat Ahmed, Gulam Mohammed Sayeed Hossain, Nazia Materials (Basel) Article Titanium metal matrix composites/TMMCs are reinforced ceramic reinforcements that have been developed and used in the automotive, biological, implants, and aerospace fields. At high temperatures, TMMCs can provide up to 50% weight reduction compared to monolithic super alloys while maintaining comparable quality or state of strength. The objective of this research was the analysis and evaluation of the effect/influence of different sintering temperatures, reinforcement size dependence of mechanical properties, and fortification mechanisms on the particle size distribution of B(4)C, SiC, and ZrO(2) reinforced TMMCs that were produced and fabricated by powder metallurgy/PM. SEM, XRD, a Rockwell hardness tester, and the Archimedes principle were used in this analysis. The composites’ hardness, approximation, tensile, yielding, and ultimate strength were all increased. As the composite was reinforced with low-density ceramics material and particles, its density decreased. The volume and void content in all the synthesized specimens is below 1%; this is the result of good sample densification, mechanical properties and uniform distribution of the reinforced particle samples; 5% B(4)C, 12.5% SiC, 7.5% ZrO(2), 75% Ti develop higher mechanical properties, such as higher hardness, approximation tensile, yielding, and ultimate strength and low porosity. MDPI 2022-08-12 /pmc/articles/PMC9413636/ /pubmed/36013676 http://dx.doi.org/10.3390/ma15165525 Text en © 2022 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
Gemeda, Birhane Assefa
Sinha, Devendra Kumar
Singh, Gyanendra Kumar
Alghtani, Abdulaziz H.
Tirth, Vineet
Algahtani, Ali
Mengesha, Getinet Asrat
Ahmed, Gulam Mohammed Sayeed
Hossain, Nazia
Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites
title Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites
title_full Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites
title_fullStr Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites
title_full_unstemmed Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites
title_short Effect of Sintering Temperatures, Reinforcement Size on Mechanical Properties and Fortification Mechanisms on the Particle Size Distribution of B(4)C, SiC and ZrO(2) in Titanium Metal Matrix Composites
title_sort effect of sintering temperatures, reinforcement size on mechanical properties and fortification mechanisms on the particle size distribution of b(4)c, sic and zro(2) in titanium metal matrix composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9413636/
https://www.ncbi.nlm.nih.gov/pubmed/36013676
http://dx.doi.org/10.3390/ma15165525
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