Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions

Combustion syntheses involving intermetallic and thermitic reactions were conducted to fabricate FeAl–TiB2–Al2O3 composites. Two combustion systems consisting of Fe, Al, Ti, Fe2O3 and B2O3 were studied for formation of xFeAl–yTiB2–Al2O3 composites with x = 1.5...

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Main Authors: Chun-Liang Yeh, Chih-Yao Ke
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Crystals
Subjects:
Online Access:http://www.mdpi.com/2073-4352/9/3/127
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spelling doaj-3e4bb80371594cf3ad6af0f9d82e0c362020-11-24T23:46:10ZengMDPI AGCrystals2073-43522019-03-019312710.3390/cryst9030127cryst9030127Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic ReactionsChun-Liang Yeh0Chih-Yao Ke1Department of Aerospace and Systems Engineering, Feng Chia University, Taichung 40724, TaiwanDepartment of Aerospace and Systems Engineering, Feng Chia University, Taichung 40724, TaiwanCombustion syntheses involving intermetallic and thermitic reactions were conducted to fabricate FeAl–TiB2–Al2O3 composites. Two combustion systems consisting of Fe, Al, Ti, Fe2O3 and B2O3 were studied for formation of xFeAl–yTiB2–Al2O3 composites with x = 1.5–3.5 and y = 0.5–0.8. In the reaction series, thermitic reduction of Fe2O3 and B2O3 by Al thermally activated the reaction between Fe and Al. As a result, the combustion wave of the synthesis reaction was sufficiently exothermic to propagate in a self-sustaining manner. With an increase in TiB2 and FeAl of the composites, the decrease of reaction exothermicity resulted in a decline of the combustion wave velocity and reaction temperature. The activation energy Ea = 88.92 kJ/mol was deduced for the synergetic combustion reaction. Based on XRD analysis, a thorough phase conversion was achieved and composites composed of FeAl, TiB2, and Al2O3 with different contents were obtained. The SEM micrograph showed the FeAl-based composite with a dense and connecting morphology.http://www.mdpi.com/2073-4352/9/3/127combustion synthesisintermetallic reactionthermitic reactionFeAl-based compositesactivation energy
collection DOAJ
language English
format Article
sources DOAJ
author Chun-Liang Yeh
Chih-Yao Ke
spellingShingle Chun-Liang Yeh
Chih-Yao Ke
Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions
Crystals
combustion synthesis
intermetallic reaction
thermitic reaction
FeAl-based composites
activation energy
author_facet Chun-Liang Yeh
Chih-Yao Ke
author_sort Chun-Liang Yeh
title Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions
title_short Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions
title_full Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions
title_fullStr Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions
title_full_unstemmed Combustion Synthesis of FeAl-based Composites from Thermitic and Intermetallic Reactions
title_sort combustion synthesis of feal-based composites from thermitic and intermetallic reactions
publisher MDPI AG
series Crystals
issn 2073-4352
publishDate 2019-03-01
description Combustion syntheses involving intermetallic and thermitic reactions were conducted to fabricate FeAl–TiB2–Al2O3 composites. Two combustion systems consisting of Fe, Al, Ti, Fe2O3 and B2O3 were studied for formation of xFeAl–yTiB2–Al2O3 composites with x = 1.5–3.5 and y = 0.5–0.8. In the reaction series, thermitic reduction of Fe2O3 and B2O3 by Al thermally activated the reaction between Fe and Al. As a result, the combustion wave of the synthesis reaction was sufficiently exothermic to propagate in a self-sustaining manner. With an increase in TiB2 and FeAl of the composites, the decrease of reaction exothermicity resulted in a decline of the combustion wave velocity and reaction temperature. The activation energy Ea = 88.92 kJ/mol was deduced for the synergetic combustion reaction. Based on XRD analysis, a thorough phase conversion was achieved and composites composed of FeAl, TiB2, and Al2O3 with different contents were obtained. The SEM micrograph showed the FeAl-based composite with a dense and connecting morphology.
topic combustion synthesis
intermetallic reaction
thermitic reaction
FeAl-based composites
activation energy
url http://www.mdpi.com/2073-4352/9/3/127
work_keys_str_mv AT chunliangyeh combustionsynthesisoffealbasedcompositesfromthermiticandintermetallicreactions
AT chihyaoke combustionsynthesisoffealbasedcompositesfromthermiticandintermetallicreactions
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