Thermal Activation of Kaolin: Effect of Kaolin Mineralogy on the Activation Process †
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
2.3. Testing and Analysis Techniques
2.3.1. X-ray Diffraction (XRD)
2.3.2. Fourier-Transform Infrared Spectroscopy (FTIR)
2.3.3. Thermal Analysis (TG-DTA/DSC)
2.3.4. Chapelle Test—Reactivity
3. Results and Discussion
4. Conclusions
- 1.
- The conditions of the thermal activation are built upon the mineralogical characteristics of the raw material. Specifically, samples with less impurities need calcination at lower temperatures in order to be activated.
- 2.
- The XRD and FTIR results showed that for all the kaolin qualities, the transformation to metakaolin started even at 600 °C, which is the lowest temperature that was investigated.
- 3.
- Particularly in the low purity calcined samples, only the impurities seemed to be present at higher temperatures.
- 4.
- The DTA curves revealed that the two purer qualities (Supreme and Speswhite) had a better crystallinity than the other samples.
- 5.
- As shown by Chapelle test results, the pozzolanic activity of thermally activated kaolins depended on the contained impurities.
- 6.
- The purer qualities tended to form metakaolin with a higher reactivity.
- 7.
- The purest kaolin (Supreme) appeared to have the optimum results. Supreme had the best thermal behavior and the obtained metakaolin had the highest pozzolanic activity in comparison to the other three kaolin qualities.
- 8.
- Finally, it seems that the purer the kaolin, the easier its thermal activation.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Kaolin Quality | 600 °C | 650 °C | 700 °C |
---|---|---|---|
mg of CaOH2 | |||
Kaolin E | 1421 | 1522 | 1576 |
Kaolin B | 1492 | 1542 | 1602 |
Speswhite | 1567 | 1607 | 1676 |
Supreme | 1724 | 1767 | 1782 |
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Kosmidi, D.; Panagiotopoulou, C.; Angelopoulos, P.; Taxiarchou, M. Thermal Activation of Kaolin: Effect of Kaolin Mineralogy on the Activation Process. Mater. Proc. 2021, 5, 18. https://doi.org/10.3390/materproc2021005018
Kosmidi D, Panagiotopoulou C, Angelopoulos P, Taxiarchou M. Thermal Activation of Kaolin: Effect of Kaolin Mineralogy on the Activation Process. Materials Proceedings. 2021; 5(1):18. https://doi.org/10.3390/materproc2021005018
Chicago/Turabian StyleKosmidi, Dimitra, Chrysa Panagiotopoulou, Panagiotis Angelopoulos, and Maria Taxiarchou. 2021. "Thermal Activation of Kaolin: Effect of Kaolin Mineralogy on the Activation Process" Materials Proceedings 5, no. 1: 18. https://doi.org/10.3390/materproc2021005018
APA StyleKosmidi, D., Panagiotopoulou, C., Angelopoulos, P., & Taxiarchou, M. (2021). Thermal Activation of Kaolin: Effect of Kaolin Mineralogy on the Activation Process. Materials Proceedings, 5(1), 18. https://doi.org/10.3390/materproc2021005018