Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
Abstract
:1. Introduction
1.1. Quartz and Illite
1.2. Illite-Based Ceramics
2. Materials and Methods
3. Results and Discussion
3.1. Mass Changes
3.2. Volume Changes
3.3. Bulk Density
3.4. Young’s Modulus during Heating
3.5. Young’s Modulus during Cooling
4. Conclusions
- The release of the physically bound water increases Young’s modulus by ∼70%.
- The influence of the α → β quartz transition and dehydroxylation of illite on Young’s modulus is negligible during heating.
- The intensive sintering, which takes place at ∼800 °C → 1100 °C → 800 °C increases Young’s modulus.
- Solidification of the glassy phase is finished at ∼750 °C. Cooling from this temperature, the creation of cracks begins due to differences between the thermal expansions of quartz, glassy phase, and other mineral phases.
- At around the β → α quartz transition, a partial recovery of Young’s modulus occurs as the result of the thermal stresses reversal.
- Young’s modulus lowers its values down to the room temperature as the consequence of cracking.
- The results of Young’s modulus indicate that the mineral composition and character of the clay particles, determined by the clay’s origin, play an important role for Young’s modulus, with the final values varying between 15 GPa to 68 GPa.
- Only the Kunda clay from Estonia keeps its Young’s modulus values after the β → α quartz transition. To explain this anomalous behavior, a new set of experiments should focus on studying the microstructure, composition, and granulometry of the Kunda clay.
Author Contributions
Funding
Conflicts of Interest
References
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Minerals | Füzérradvány | Radobica | Kunda | Arumetsa | Liepa |
---|---|---|---|---|---|
Illite | 80 | 51 | 54 | 43 | 37 |
Kaolinite | – | – | 8 | 18 | 15 |
Montmorillonite | 4 | – | – | – | – |
Chlorite | – | – | 5 | – | – |
Quartz | 12 | 34 | 28 | 25 | 35 |
Feldspar | 4 | 13 | 5 | 11 | 13 |
Calcite | – | 2 | – | 3 | – |
Oxides | Füzérradvány | Radobica | Kunda | Arumetsa | Liepa |
---|---|---|---|---|---|
SiO2 | 58.4 | 56.7 | 61.4 | 57.8 | 62.7 |
Al2O3 | 23.9 | 23.1 | 17.8 | 18.7 | 15.9 |
Fe2O3 | 0.6 | 6.3 | 5.7 | 7.0 | 7.2 |
TiO2 | – | 0.5 | – | – | 1.9 |
CaO | 0.4 | 0.4 | 0.4 | 1.6 | 0.9 |
MgO | 1.7 | 2.4 | 2.3 | 2.6 | 1.5 |
K2O | 7.7 | 5.0 | 5.6 | 4.8 | 4.3 |
Na2O | 0.1 | – | 0.1 | 0.6 | 0.1 |
SO2 | – | – | 1.7 | – | – |
L.O.I | 7.2 | 5.6 | 5.0 | 6.9 | 5.5 |
Minerals | Füzérradvány | Radobica | Kunda | Arumetsa | Liepa |
---|---|---|---|---|---|
Quartz | 11 | 34 | 23 | 24.3 | 35 |
Feldspar | 6 | 10 | 7 | 4.6 | 5 |
Hematite | – | 4 | 2 | 3.0 | 4 |
Spinel | 4 | 7 | – | 2.8 | – |
Amorphous | 79 | 45 | 68 | 62.0 | 56 |
Quantity | Füzérradvány | Radobica | Kunda | Arumetsa | Liepa |
---|---|---|---|---|---|
Efinal (GPa) | 39 | 17 | 68 | 30 | 15 |
ρfinal (g/cm3) | 1.84 | 1.95 | 2.27 | 2.17 | 1.94 |
Δρ (g/cm3) | 0.18 | 0.1 | 0.44 | 0.28 | 0.08 |
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Húlan, T.; Štubňa, I.; Ondruška, J.; Csáki, Š.; Lukáč, F.; Mánik, M.; Vozár, L.; Ozolins, J.; Kaljuvee, T.; Trník, A. Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing. Materials 2020, 13, 4968. https://doi.org/10.3390/ma13214968
Húlan T, Štubňa I, Ondruška J, Csáki Š, Lukáč F, Mánik M, Vozár L, Ozolins J, Kaljuvee T, Trník A. Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing. Materials. 2020; 13(21):4968. https://doi.org/10.3390/ma13214968
Chicago/Turabian StyleHúlan, Tomáš, Igor Štubňa, Ján Ondruška, Štefan Csáki, František Lukáč, Marek Mánik, Libor Vozár, Jurijs Ozolins, Tiit Kaljuvee, and Anton Trník. 2020. "Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing" Materials 13, no. 21: 4968. https://doi.org/10.3390/ma13214968
APA StyleHúlan, T., Štubňa, I., Ondruška, J., Csáki, Š., Lukáč, F., Mánik, M., Vozár, L., Ozolins, J., Kaljuvee, T., & Trník, A. (2020). Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing. Materials, 13(21), 4968. https://doi.org/10.3390/ma13214968