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Effects of alumina sources on the microstructure and properties of nitrided Al2O3-C refractories
Fused white alumina, tabular alumina with a plate-like morphology, reactive alumina powder with a high specific surface area and industrial alumina composed of 40 to 76% γ-Al2O3 and 60 to 24% α-Al2O3 were selected as alumina sources and grouped in this work. The effects of alumina sources on the mic...
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Published in: | Ceramics international 2015-05, Vol.41 (4), p.5513-5524 |
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description | Fused white alumina, tabular alumina with a plate-like morphology, reactive alumina powder with a high specific surface area and industrial alumina composed of 40 to 76% γ-Al2O3 and 60 to 24% α-Al2O3 were selected as alumina sources and grouped in this work. The effects of alumina sources on the microstructure of nitrided Al2O3-C refractories were investigated. A large number of β-Sialon phases and a small number of SiC phases were formed when the alumina source varied, and α-Si3N4 phase was only formed when using tabular alumina. The β-Sialon phase was deemed to be the major ceramic bonding phase, which generated the morphologies of column and tabular column. Columned β-Sialon crystals with conical tips were formed by the direct nitriding of liquid silicon following a VLS (vapor-liquid-solid) growth mechanism, the transformation of the VLS growth mechanism into a VS (vapor-solid) growth mechanism was observed when using industrial alumina with smooth tips on the β-Sialon crystals. β-Sialon crystals with a morphology of tabular column were formed through nitriding of SiO (g) and Si (g) following the VS growth mechanism. SiC whiskers were formed by the reacting of CO (g) and SiO (g) following a CVD (chemical-vapor-deposition) growth mechanism. The physical, mechanical and thermal properties of these groups after the nitriding process were also investigated and compared. When using reactive alumina powder and fused white alumina as the alumina sources, the optimal cold crushing strength (CCS) and cold modulus of rupture (CMOR) were generated due to the dense reticular structure, and also the optimal hot modulus of rupture (HMOR) was achieved due to the formation of large size of O’-Sialon tabular whiskers in the test atmosphere. Improved thermal shock resistance and oxidation resistance were also observed. |
doi_str_mv | 10.1016/j.ceramint.2014.12.127 |
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The effects of alumina sources on the microstructure of nitrided Al2O3-C refractories were investigated. A large number of β-Sialon phases and a small number of SiC phases were formed when the alumina source varied, and α-Si3N4 phase was only formed when using tabular alumina. The β-Sialon phase was deemed to be the major ceramic bonding phase, which generated the morphologies of column and tabular column. Columned β-Sialon crystals with conical tips were formed by the direct nitriding of liquid silicon following a VLS (vapor-liquid-solid) growth mechanism, the transformation of the VLS growth mechanism into a VS (vapor-solid) growth mechanism was observed when using industrial alumina with smooth tips on the β-Sialon crystals. β-Sialon crystals with a morphology of tabular column were formed through nitriding of SiO (g) and Si (g) following the VS growth mechanism. SiC whiskers were formed by the reacting of CO (g) and SiO (g) following a CVD (chemical-vapor-deposition) growth mechanism. The physical, mechanical and thermal properties of these groups after the nitriding process were also investigated and compared. When using reactive alumina powder and fused white alumina as the alumina sources, the optimal cold crushing strength (CCS) and cold modulus of rupture (CMOR) were generated due to the dense reticular structure, and also the optimal hot modulus of rupture (HMOR) was achieved due to the formation of large size of O’-Sialon tabular whiskers in the test atmosphere. 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The effects of alumina sources on the microstructure of nitrided Al2O3-C refractories were investigated. A large number of β-Sialon phases and a small number of SiC phases were formed when the alumina source varied, and α-Si3N4 phase was only formed when using tabular alumina. The β-Sialon phase was deemed to be the major ceramic bonding phase, which generated the morphologies of column and tabular column. Columned β-Sialon crystals with conical tips were formed by the direct nitriding of liquid silicon following a VLS (vapor-liquid-solid) growth mechanism, the transformation of the VLS growth mechanism into a VS (vapor-solid) growth mechanism was observed when using industrial alumina with smooth tips on the β-Sialon crystals. β-Sialon crystals with a morphology of tabular column were formed through nitriding of SiO (g) and Si (g) following the VS growth mechanism. SiC whiskers were formed by the reacting of CO (g) and SiO (g) following a CVD (chemical-vapor-deposition) growth mechanism. The physical, mechanical and thermal properties of these groups after the nitriding process were also investigated and compared. When using reactive alumina powder and fused white alumina as the alumina sources, the optimal cold crushing strength (CCS) and cold modulus of rupture (CMOR) were generated due to the dense reticular structure, and also the optimal hot modulus of rupture (HMOR) was achieved due to the formation of large size of O’-Sialon tabular whiskers in the test atmosphere. Improved thermal shock resistance and oxidation resistance were also observed.</description><subject>Al2O3-C</subject><subject>Aluminum oxide</subject><subject>Columns (structural)</subject><subject>Crystals</subject><subject>Microstructure</subject><subject>Morphology</subject><subject>Nitriding</subject><subject>Oxidation resistance</subject><subject>O’-Sialon</subject><subject>Phases</subject><subject>Properties</subject><subject>Refractories</subject><subject>Silicon carbide</subject><subject>Tips</subject><subject>β-Sialon</subject><issn>0272-8842</issn><issn>1873-3956</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2015</creationdate><recordtype>article</recordtype><recordid>eNqFUE1LAzEUDKJg_fgLkqOXrUk23WRvllI_oNCLnmP69gVT9qMmWcF_b9bqWd6DB4-ZYWYIueFszhmv7vZzwGA736e5YFzOucirTsiMa1UWZb2oTsmMCSUKraU4Jxcx7lkm1pLNyNvaOYQU6eCobcesYmkcxgCYXz1N70g7D2GIKYyQxoDU9g09hOGAIXn84fU-Bd9gQ5et2JbFigZ0wUIaQgZckTNn24jXv_eSvD6sX1ZPxWb7-LxabgqQmqdCixqtlgAcWeXqXWW50lpoyXYosNZOWcgjSlnXjlvtQLMKNFcLUE4qUV6S26Nu9vYxYkym8xGwbW2PwxhNRpYLwSo2QasjdMoVs1lzCL6z4ctwZqZKzd78VWqmSg0XeVUm3h-JmIN8egwmgscesPEhl2iawf8n8Q1jnoQR</recordid><startdate>20150501</startdate><enddate>20150501</enddate><creator>Peng, Nai</creator><creator>Deng, Chengji</creator><creator>Zhu, Hongxi</creator><creator>Li, Jun</creator><creator>Wang, Shaohua</creator><general>Elsevier Ltd</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7QF</scope><scope>7QQ</scope><scope>7SR</scope><scope>7U5</scope><scope>8FD</scope><scope>JG9</scope><scope>L7M</scope></search><sort><creationdate>20150501</creationdate><title>Effects of alumina sources on the microstructure and properties of nitrided Al2O3-C refractories</title><author>Peng, Nai ; Deng, Chengji ; Zhu, Hongxi ; Li, Jun ; Wang, Shaohua</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c481t-829ea84cc1e06f9b6a17882840be2e98f7acaca23499f1a8fc806c8175c7f4723</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2015</creationdate><topic>Al2O3-C</topic><topic>Aluminum oxide</topic><topic>Columns (structural)</topic><topic>Crystals</topic><topic>Microstructure</topic><topic>Morphology</topic><topic>Nitriding</topic><topic>Oxidation resistance</topic><topic>O’-Sialon</topic><topic>Phases</topic><topic>Properties</topic><topic>Refractories</topic><topic>Silicon carbide</topic><topic>Tips</topic><topic>β-Sialon</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Peng, Nai</creatorcontrib><creatorcontrib>Deng, Chengji</creatorcontrib><creatorcontrib>Zhu, Hongxi</creatorcontrib><creatorcontrib>Li, Jun</creatorcontrib><creatorcontrib>Wang, Shaohua</creatorcontrib><collection>CrossRef</collection><collection>Aluminium Industry Abstracts</collection><collection>Ceramic Abstracts</collection><collection>Engineered Materials Abstracts</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>Technology Research Database</collection><collection>Materials Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Ceramics international</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Peng, Nai</au><au>Deng, Chengji</au><au>Zhu, Hongxi</au><au>Li, Jun</au><au>Wang, Shaohua</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Effects of alumina sources on the microstructure and properties of nitrided Al2O3-C refractories</atitle><jtitle>Ceramics international</jtitle><date>2015-05-01</date><risdate>2015</risdate><volume>41</volume><issue>4</issue><spage>5513</spage><epage>5524</epage><pages>5513-5524</pages><issn>0272-8842</issn><eissn>1873-3956</eissn><abstract>Fused white alumina, tabular alumina with a plate-like morphology, reactive alumina powder with a high specific surface area and industrial alumina composed of 40 to 76% γ-Al2O3 and 60 to 24% α-Al2O3 were selected as alumina sources and grouped in this work. The effects of alumina sources on the microstructure of nitrided Al2O3-C refractories were investigated. A large number of β-Sialon phases and a small number of SiC phases were formed when the alumina source varied, and α-Si3N4 phase was only formed when using tabular alumina. The β-Sialon phase was deemed to be the major ceramic bonding phase, which generated the morphologies of column and tabular column. Columned β-Sialon crystals with conical tips were formed by the direct nitriding of liquid silicon following a VLS (vapor-liquid-solid) growth mechanism, the transformation of the VLS growth mechanism into a VS (vapor-solid) growth mechanism was observed when using industrial alumina with smooth tips on the β-Sialon crystals. β-Sialon crystals with a morphology of tabular column were formed through nitriding of SiO (g) and Si (g) following the VS growth mechanism. SiC whiskers were formed by the reacting of CO (g) and SiO (g) following a CVD (chemical-vapor-deposition) growth mechanism. The physical, mechanical and thermal properties of these groups after the nitriding process were also investigated and compared. When using reactive alumina powder and fused white alumina as the alumina sources, the optimal cold crushing strength (CCS) and cold modulus of rupture (CMOR) were generated due to the dense reticular structure, and also the optimal hot modulus of rupture (HMOR) was achieved due to the formation of large size of O’-Sialon tabular whiskers in the test atmosphere. Improved thermal shock resistance and oxidation resistance were also observed.</abstract><pub>Elsevier Ltd</pub><doi>10.1016/j.ceramint.2014.12.127</doi><tpages>12</tpages></addata></record> |
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subjects | Al2O3-C Aluminum oxide Columns (structural) Crystals Microstructure Morphology Nitriding Oxidation resistance O’-Sialon Phases Properties Refractories Silicon carbide Tips β-Sialon |
title | Effects of alumina sources on the microstructure and properties of nitrided Al2O3-C refractories |
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