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Sintering behaviour of porous ceramic kaolin-corundum composites: Phase evolution and densification

机译:多孔陶瓷高岭土-刚玉复合材料的烧结行为:相变和致密化

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摘要

Kaolinite-corundum (derived from bauxite) associations were assessed as candidate matrices in the field of porous ceramics composites. Particles of corundum were expected to behave as non reactive second phase, deflecting the matrix cracks and increasing the toughness. Porosity and densification were monitored by developing coarse grains (67 wt% of grains <1 mm and 33wt% of grains between 1 and 4 mm) of bauxite-based chamotte with corundum as principal phase. The main features resulting from the use of bauxite-based chamotte were the increase of softening point, the absence of vitrification in the temperature range of refractory composites in service and the achievement of a good thermal stability. For temperatures ranging between 1200 and 1300 ℃, flint kaolin matrix did not show any reaction with the red corundum grains. Refractory composites elaborated with more than 30% of corundum exhibited typical final characteristics which satisfied ASTM C155 and ISO 1109 standards for refractory materials, namely: the chemical composition (Al_2O_3 > 56 wt.%), the secondary expansion (<0.1 %), the total porosity (~45vol.%) and the bulk density (1.9g/cm~3). Such materials are promising low-cost solutions for the production of porous ceramics composites.
机译:高岭石-刚玉(源自铝土矿)协会被评估为多孔陶瓷复合材料领域的候选基质。刚玉颗粒预计会表现为非反应性第二相,从而偏转基体裂纹并增加韧性。通过开发以刚玉为主要相的铝土矿型硬质合金的粗大晶粒(67%(小于1mm的晶粒,33 %%的1-4mm的晶粒))来监测孔隙率和致密化。使用铝土矿基硬质合金的主要特征是软化点的增加,使用中的耐火复合材料在温度范围内不发生玻璃化以及获得良好的热稳定性。在1200至1300℃的温度范围内,火石高岭土基体与红色刚玉颗粒没有反应。刚玉含量超过30%的耐火复合材料具有典型的最终特性,满足耐火材料的ASTM C155和ISO 1109标准,即:化学成分(Al_2O_3> 56 wt。%),二次膨胀(<0.1%),总孔隙率(〜45vol。%)和堆积密度(1.9g / cm〜3)。这种材料是生产多孔陶瓷复合材料的有前途的低成本解决方案。

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  • 来源
    《Materials Science and Engineering》 |2011年第30期|p.8311-8318|共8页
  • 作者单位

    Laboratoire de Physico Chimie des Materiaux Mineraux, Faculty des Sciences, Universite de Yaounde I, BP 812 Yaounde, Cameroon,Mission de Promotion des Materiaux Locaux, Ministere de la Recherche Scientifique et de l'Innovation, BP 2396 Yaounde, Cameroon;

    Mission de Promotion des Materiaux Locaux, Ministere de la Recherche Scientifique et de l'Innovation, BP 2396 Yaounde, Cameroon,Dipartimento di Ingegneria dei Material! e dell'Ambiente, Universita di Modena e Reggio Emilia, Via Vignolese 90S, 41100 Modena, Italy;

    Laboratoire de Physico-Chimie du Bois, Faculte des Sciences, Universite de Yaounde I, BP812 Yaounde, Cameroon;

    Laboratoire Croupe d'Etude des Materiaux Heterogenes, Ecole Nationale Superieure de Ceramiaue Industrielle, 12 Rue Atlantis, 87068 Limoges Cedex, France;

    Laboratoire Croupe d'Etude des Materiaux Heterogenes, Ecole Nationale Superieure de Ceramiaue Industrielle, 12 Rue Atlantis, 87068 Limoges Cedex, France;

    Laboratoire de Physico Chimie des Materiaux Mineraux, Faculty des Sciences, Universite de Yaounde I, BP 812 Yaounde, Cameroon,Mission de Promotion des Materiaux Locaux, Ministere de la Recherche Scientifique et de l'Innovation, BP 2396 Yaounde, Cameroon;

    Laboratoire de Physico Chimie des Materiaux Mineraux, Faculty des Sciences, Universite de Yaounde I, BP 812 Yaounde, Cameroon;

    Laboratoire Croupe d'Etude des Materiaux Heterogenes, Ecole Nationale Superieure de Ceramiaue Industrielle, 12 Rue Atlantis, 87068 Limoges Cedex, France;

    Laboratoire de Physico Chimie des Materiaux Mineraux, Faculty des Sciences, Universite de Yaounde I, BP 812 Yaounde, Cameroon;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ceramics; corundum; clay; composites; mechanical properties;

    机译:陶瓷;刚玉粘土;复合材料机械性能;

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