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Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting

To elucidate the behavior of fluoride evaporation in an electroslag remelting process, the non-isothermal evaporation of the low-fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) slag is studied using thermogravimetric analysis. The evaporation law of the melted slag is further verified using...

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Detalles Bibliográficos
Autores principales: An, Bo, Gu, Yue, Ju, Jiantao, He, Kun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096392/
https://www.ncbi.nlm.nih.gov/pubmed/37049071
http://dx.doi.org/10.3390/ma16072777
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author An, Bo
Gu, Yue
Ju, Jiantao
He, Kun
author_facet An, Bo
Gu, Yue
Ju, Jiantao
He, Kun
author_sort An, Bo
collection PubMed
description To elucidate the behavior of fluoride evaporation in an electroslag remelting process, the non-isothermal evaporation of the low-fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) slag is studied using thermogravimetric analysis. The evaporation law of the melted slag is further verified using thermodynamic calculations. Fourier transformation infrared (FTIR) spectroscopy is used to evaluate the change in slag structure. It is discovered that the principal evaporating substances are CaF(2), KF, and NaF, while the evaporation of MgF(2), AlF(3), and AlOF is less. KF evaporates absolutely in the early stage of the reaction, and CaF(2) evaporates in a large proportion during the late reaction period. At 1500 °C, the order of vapor pressure is KF > CaF(2). When K(2)O and Na(2)O are added to the residue sample at the same time, the evaporation ability of KF is stronger than that of CaF(2) and NaF. As the K(2)O content increases from 0 to 8.3 wt%, evaporation increases from 0.76% to 1.21%. The evaporation rates of samples containing more K(2)O and those containing more Na(2)O are 1.48% and 1.32%, respectively. Under the same conditions, K(2)O has a greater effect on evaporation than Na(2)O. FTIR results show that the addition of K(2)O depolymerizes the network structure and that K(2)O can depolymerize the network structure better than Na(2)O.
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spelling pubmed-100963922023-04-13 Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting An, Bo Gu, Yue Ju, Jiantao He, Kun Materials (Basel) Article To elucidate the behavior of fluoride evaporation in an electroslag remelting process, the non-isothermal evaporation of the low-fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) slag is studied using thermogravimetric analysis. The evaporation law of the melted slag is further verified using thermodynamic calculations. Fourier transformation infrared (FTIR) spectroscopy is used to evaluate the change in slag structure. It is discovered that the principal evaporating substances are CaF(2), KF, and NaF, while the evaporation of MgF(2), AlF(3), and AlOF is less. KF evaporates absolutely in the early stage of the reaction, and CaF(2) evaporates in a large proportion during the late reaction period. At 1500 °C, the order of vapor pressure is KF > CaF(2). When K(2)O and Na(2)O are added to the residue sample at the same time, the evaporation ability of KF is stronger than that of CaF(2) and NaF. As the K(2)O content increases from 0 to 8.3 wt%, evaporation increases from 0.76% to 1.21%. The evaporation rates of samples containing more K(2)O and those containing more Na(2)O are 1.48% and 1.32%, respectively. Under the same conditions, K(2)O has a greater effect on evaporation than Na(2)O. FTIR results show that the addition of K(2)O depolymerizes the network structure and that K(2)O can depolymerize the network structure better than Na(2)O. MDPI 2023-03-30 /pmc/articles/PMC10096392/ /pubmed/37049071 http://dx.doi.org/10.3390/ma16072777 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
An, Bo
Gu, Yue
Ju, Jiantao
He, Kun
Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting
title Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting
title_full Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting
title_fullStr Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting
title_full_unstemmed Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting
title_short Fluoride Evaporation of Low-Fluoride CaF(2)-CaO-Al(2)O(3)-MgO-TiO(2)-(Na(2)O-K(2)O) Slag for Electroslag Remelting
title_sort fluoride evaporation of low-fluoride caf(2)-cao-al(2)o(3)-mgo-tio(2)-(na(2)o-k(2)o) slag for electroslag remelting
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096392/
https://www.ncbi.nlm.nih.gov/pubmed/37049071
http://dx.doi.org/10.3390/ma16072777
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