The Impact Of Kaolin Dehydroxylation On The Porosity And Mechanical Integrity Of Kaolin Based Ceramics Using Different Pore Formers
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Results in Physics
Abstract
Thermally induced lattice defects in kaolin play a key role in the mechanical integrity of kaolin based
ceramics during heat treatment due to their phase transformations. The effects of three types of pore
formers (sawdust, styrofoam and powdery high density polyethylene) on the porosity and mechanical integ
rity of kaolin based ceramics have been studied based on their batch formulations. The porosity of the
ceramic bodies was experimentally determined, while the structure and chemistry of the materials were
elucidated via X-ray diffraction (XRD), scanning electron microscopy (SEM), FTIR, DSC/TG/DTA, and zeta
potential. The kaolin-based porous samples sintered at 1150 C exhibited mullite phase transformation
attributed to recrystallization effects. Morphologically, open pores were distributed on the sample sur
faces due to larger pathways and available channels of eviction of the pore formers. Compressive strength
decreased linearly as apparent porosity increased signifying its correlation. The compressive strength
showed to be much more sensitive to defects created by dehydroxylation as micro cracks were observed
on the sample with HDPE as pore former which could be as a result of large volume change accompany
ing phase transformations and sensitivity to the dehydroxylation phase. It is noted that the new pore for
mer (HDPE) used in this study produced ceramic bodies with porosity as high as 67% and hence the least
compressive strength.
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Obada, D. O., Dodoo-Arhin, D., Dauda, M., Anafi, F. O., Ahmed, A. S., & Ajayi, O. A. (2017). The impact of kaolin dehydroxylation on the porosity and mechanical integrity of kaolin based ceramics using different pore formers. Results in physics, 7, 2718-2727.
