DEVELOPMENT OF ALUMINOSILICATE REFRACTORY CRUCIBLES FROM THE OPTIMUM MIX OF AWO QUARTZ AND IKERE EKITI CLAYS
Abstract
Refractory needs in Nigeria are enormous but have not been fully met owing to over-reliance on importation. This has necessitated researches channeled towards local production of refractory materials in the country. In this research, the suitability of the quadraxial blend of Awo quartz, and Ikere Ekiti clays (ball clay and kaolin / kaolin grog) for refractory crucible production was tested. The test samples were fired in a gas kiln up to 13000C for 6 hours. After firing, the optimum mix was determined by subjecting the test samples to standard tests such as linear shrinkage, water absorption, compressive strength and refractoriness. The result showed linear total shrinkage between 5.8%-11.77%; water absorption rates of 8.82%-18.51%; and refractoriness of 1698.50C-1740.90C. All the samples showed good refractoriness above 13000C and ability to maintain good resistance to thermal shock. The optimum mix of the aluminosilicate materials was used in the development of refractory crucibles which are suitable for use in metallurgical, glassmaking, and ceramics processes.Â
Full Text:
PDFReferences
Adamu A., Giwa Y., and Opoku E.V. (2015) Production of High Temperature Refractory Crucibles from Locally Available Clays in Nigeria. Proceeding to the 12th Annual Ceramic Researchers Association of Nigeria (CERAN) Conference and Exhibition held at School of Arts and Industrial Design, Auchi Polytechnic, Auchi on from 4th -8th October, 2015.
Adelabu O.S. (2012) Documentation, Application and Utilisation of Clay Minerals in Kaduna State (Nigeria). Intech. DOI:10.5772/48093
American Standard of Testing Materials (2010). ASTM C20-00: Standard Test Methods for Apparent Porosity, Water Absorption, Apparent Specific Gravity, and Bulk Density of Burned Refractory Brick and Shapes by Boiling Water.
American Standard of Testing Materials (2003). ASTM C326-03: Standard Test Method for Drying and Firing Shrinkages of Ceramic Whiteware Clays.
Aramide, F.O. And Oke, S.R. (2014) Production and Characterization of Clay Bonded Carbon Refractory from Carbonized Palm Kernel Shell. ACTA Technical Corviniensis Bulletin of Engineering , 7 (4) : 133- 140.
Apeh F.I., Esezobor D.E., and Lawal G.I. (2011), Characterization of Onibode and Owode-ketu Clays for Use as Refractory Materials in Foundry Industry. Journal of Engineering Research, 16 (3): 69-77
Atanda, P., Adeniji, O., and Oluwole, O. (2012), Development of Heat Treatment Refractory Bricks Using Local Nigerian Clays. International Journal of Materials and Chemistry, 2 (5): 185-191
Aye, A.E. and Oyetunji, A. (2013) Metallurgical Analysis of Ugunoda Clay Deposit, Nigeria For Use as A Refractory. International Journal of Science and Advanced Technology, 3 (10): 25-29
Bhatia, A.B.E., (2012) Overview of Refractory Materials. PDHonline Course M158 (3 PDH). Available from: www.PDHonline.org.
Carol M. (2008) New Ash Glazes from Arable Crop Waste: Exploring the Use of Straw from Pisum Sativum (Combining Pea) and Vicia Faba (Field Bean). Doctoral thesis, University of Sunderland. Available from: http://sure.sunderland.ac.uk/3657/
Cuesta L.C.D. and Bernardo S.T. (1987). Development of Porcelain Chemical Crucibles from Local Materials. The Philipines Journal of Science, 116 (3): 327- 346
Folorunso, D.O., Olubambi P. and Borode J.O. (2014) Characterization and QualitativeAnalysis
of Some Nigerian Clay Deposits for Refractory Applications. IOSR Journal of Applied
Chemistry, 7 (9): 40-47.
Goski D.A, Doza D.K., DiSaia A.S., and Lawrie D. (2014) Reinforced Refractory Containers, World Intellectual Property Organization Intellectual Bureau, Published under Patent
Corporation Treaty.W0 2014/02275 A2.
Hansen T. (2008). Calcined Kaolin. Digital Fire Reference Database Ceramic Materials. Available from: http://digitalfire.com.
Henrik N. (1987) The Self Reliant Potter: Refractories and Kilns. Available from: www.nzdl.org/gsdlmod.
Kashim I.B. (2011). Solid Mineral Development in Sustaining Nigeria’s Economic and Environmental Realities of the 21st Century. Journal of Sustainable Development in Africa, 13 (2): 210-223
Lawrence O.O. and Ayo S.A. (2012). Suitability of Nigerian Rocks as Refractory Materials for Monolithic Furnace Lining. Particulate Science and Technology: An International Journal. Copyright @Taylor & Francis Group, LLC. 30 (3): 209-219
Odewale I. O., Obika B. M. and Tse D. T. (2015). Production and Characterization of Aluminosilicate Refractory Brick Using Unwana Beach Silica Sand, Ekebedi and Unwana Clays. British Journal of Applied Science & Technology, 5 (5): 461-471.
Oladiji O.A., Borode J.O., Adewuyi B.O., and Ohijeagbon O.I. (2010). Development of
Porcelain Insulators from Locally Sourced Materials, USEP: Journal of Research
Information in Civil Engineering, 7 (1): 47-58.
Olasupo O. A. and Borode J. O. (2009). Development of Insulating Refractory Ramming Mass from Some Nigerian Refractory Raw Materials. Journal of Minerals & Materials Characterization & Engineering, 8 (9): 667-678.
The Refractories Institute (1987), Refractory. Pittsburg, PA 15222(412) 281-6787. Pg 6-8
Umaru M., Aliyu M.A, Mohammed I.A., and Sadiq M.M. (2012). A Comparative Study on the Refractory Properties of Selected Clays in North Central Nigeria. Academic Research International, 3 (1): 393-398
Refbacks
- There are currently no refbacks.