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Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing

Dynamical thermomechanical analysis of 5 illite-based clays from deposits in Slovakia, Estonia, Latvia, and Hungary is presented. The clays consist of illite (37–80 mass%), quartz (12–48 mass%), K-feldspar (4–13 mass%), kaolinite (0–18 mass%), and calcite (0–3 mass%). Young’s modulus is measured dur...

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Autores principales: Húlan, Tomáš, Štubňa, Igor, Ondruška, Ján, Csáki, Štefan, Lukáč, František, Mánik, Marek, Vozár, Libor, Ozolins, Jurijs, Kaljuvee, Tiit, Trník, Anton
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663826/
https://www.ncbi.nlm.nih.gov/pubmed/33158292
http://dx.doi.org/10.3390/ma13214968
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author Húlan, Tomáš
Štubňa, Igor
Ondruška, Ján
Csáki, Štefan
Lukáč, František
Mánik, Marek
Vozár, Libor
Ozolins, Jurijs
Kaljuvee, Tiit
Trník, Anton
author_facet Húlan, Tomáš
Štubňa, Igor
Ondruška, Ján
Csáki, Štefan
Lukáč, František
Mánik, Marek
Vozár, Libor
Ozolins, Jurijs
Kaljuvee, Tiit
Trník, Anton
author_sort Húlan, Tomáš
collection PubMed
description Dynamical thermomechanical analysis of 5 illite-based clays from deposits in Slovakia, Estonia, Latvia, and Hungary is presented. The clays consist of illite (37–80 mass%), quartz (12–48 mass%), K-feldspar (4–13 mass%), kaolinite (0–18 mass%), and calcite (0–3 mass%). Young’s modulus is measured during the heating and cooling stages of firing (25 °C → 1100 °C → 25 °C). The liberation of the physically bound water increases Young’s modulus by ∼70% for all studied clays. By increasing the temperature, dehydroxylation and the α → β transition of quartz take place without a significant effect on Young’s modulus. Sintering, which starts at 800 °C, leads to an intensive increase in Young’s modulus up to the highest temperature (1100 °C). The increase remains also in the early stage of cooling (1100 °C → 800 °C). This increase of Young’s modulus is also the result of solidification of the glassy phase, which is finished at ∼750 °C. A sharp minimum of Young’s modulus is observed at around the β → α transition of quartz. Then, Young’s modulus still decreases its value down to the room temperature. The physical processes observed during heating and cooling do not differ in nature for the studied clays. Values of Young’s modulus vary at around 8 GPa, up to 800 °C. During sintering, Young’s modulus reaches values from 30 GPa to 70 GPa for the studied clays. The microstructure and composition given by the origin of the clay play a cardinal role for the Young’s modulus of the final ceramic body.
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spelling pubmed-76638262020-11-14 Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing Húlan, Tomáš Štubňa, Igor Ondruška, Ján Csáki, Štefan Lukáč, František Mánik, Marek Vozár, Libor Ozolins, Jurijs Kaljuvee, Tiit Trník, Anton Materials (Basel) Article Dynamical thermomechanical analysis of 5 illite-based clays from deposits in Slovakia, Estonia, Latvia, and Hungary is presented. The clays consist of illite (37–80 mass%), quartz (12–48 mass%), K-feldspar (4–13 mass%), kaolinite (0–18 mass%), and calcite (0–3 mass%). Young’s modulus is measured during the heating and cooling stages of firing (25 °C → 1100 °C → 25 °C). The liberation of the physically bound water increases Young’s modulus by ∼70% for all studied clays. By increasing the temperature, dehydroxylation and the α → β transition of quartz take place without a significant effect on Young’s modulus. Sintering, which starts at 800 °C, leads to an intensive increase in Young’s modulus up to the highest temperature (1100 °C). The increase remains also in the early stage of cooling (1100 °C → 800 °C). This increase of Young’s modulus is also the result of solidification of the glassy phase, which is finished at ∼750 °C. A sharp minimum of Young’s modulus is observed at around the β → α transition of quartz. Then, Young’s modulus still decreases its value down to the room temperature. The physical processes observed during heating and cooling do not differ in nature for the studied clays. Values of Young’s modulus vary at around 8 GPa, up to 800 °C. During sintering, Young’s modulus reaches values from 30 GPa to 70 GPa for the studied clays. The microstructure and composition given by the origin of the clay play a cardinal role for the Young’s modulus of the final ceramic body. MDPI 2020-11-04 /pmc/articles/PMC7663826/ /pubmed/33158292 http://dx.doi.org/10.3390/ma13214968 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Húlan, Tomáš
Štubňa, Igor
Ondruška, Ján
Csáki, Štefan
Lukáč, František
Mánik, Marek
Vozár, Libor
Ozolins, Jurijs
Kaljuvee, Tiit
Trník, Anton
Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
title Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
title_full Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
title_fullStr Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
title_full_unstemmed Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
title_short Young’s Modulus of Different Illitic Clays during Heating and Cooling Stage of Firing
title_sort young’s modulus of different illitic clays during heating and cooling stage of firing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663826/
https://www.ncbi.nlm.nih.gov/pubmed/33158292
http://dx.doi.org/10.3390/ma13214968
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