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Effect of kyanite on rheological properties of dense aqueous alumina suspensions

机译:蓝晶石对致密氧化铝水悬浮液流变性能的影响

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摘要

The present work examines the effect of pH on aqueous suspensions of alumina and alumina–kyanite mixtures to assess the influence of kyanite additions on suspension properties. This system is of interest because on heating to temperatures above 1400°C the mineral kyanite (Al2O3 . SiO2 ) reacts to form silica and mullite (3Al2O3 . 2SiO2 ) and as the latter mineral has attractive elevated temperature properties, its incorporation into a common refractory material such as alumina is of importance in the field of technical ceramics. A popular method to produce such materials is to prepare a stable suspension of the components of interest and cast a green compact from the slurry; this compact is subsequently sintered at an appropriate temperature to densify the product. As the solids content of the original suspension influences the final product density, rheological properties are of critical importance. Both microelectrophoresis and rheological techniques suggested that a pH of 3–4 provided optimum stability. The flow behaviour of the binary mixture could be predicted by the Casson model and it is suggested that the surface characteristics of the kyanite were primarily responsible for the resulting stability regime.
机译:本工作研究了pH对氧化铝和氧化铝-蓝晶石混合物水悬浮液的影响,以评估添加蓝晶石对悬浮液性能的影响。该系统很有趣,因为加热到1400°C以上时,蓝晶石矿物(Al 2 O 3 .SiO 2 )反应形成二氧化硅和莫来石(3Al 2 O 3 .2SiO 2 ),并且由于后者具有吸引人的高温特性,因此可以掺入普通耐火材料中氧化铝等材料在工业陶瓷领域具有重要意义。生产这种材料的一种流行方法是制备目标组分的稳定悬浮液,并从浆料中浇铸生坯。随后将该压块在适当的温度下烧结以使产品致密。由于原始悬浮液的固体含量会影响最终产品的密度,因此流变特性至关重要。微电泳和流变技术均表明,pH为3-4可提供最佳稳定性。可以通过Casson模型预测二元混合物的流动行为,这表明,蓝晶石的表面特性是导致稳定性的主要原因。

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  • 来源
    《British Ceramic Transactions》 |1999年第4期|192-195|共4页
  • 作者单位

    Allied Mineral Products Inc., 2700 Scioto Parkway, Columbus, 43221–4660., OH, USA;

    The Department of Mining and Metallurgical Engineering, DalTech, Dalhousie University, 1360 Barrington St., Halifax, Nova Scotia, B3J 2X4, Canada;

    The Department of Mining and Metallurgical Engineering, DalTech, Dalhousie University, 1360 Barrington St., Halifax, Nova Scotia, B3J 2X4, Canada;

    The Department of Mining and Metallurgical Engineering, DalTech, Dalhousie University, 1360 Barrington St., Halifax, Nova Scotia, B3J 2X4, Canada;

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