Digitální knihovna UPCE přechází na novou verzi. Omluvte prosím případné komplikace. / The UPCE Digital Library is migrating to a new version. We apologize for any inconvenience.

Publikace:
THERMODYNAMIC MODEL OF CaO-SiO2 GLASSES

Článekopen accesspeer-reviewedpublished version
dc.contributor.authorLiska, Marekcze
dc.contributor.authorMachacek, Jancze
dc.contributor.authorChromcikova, Mariacze
dc.contributor.authorSvoboda, Romancze
dc.date.accessioned2021-05-15T18:18:39Z
dc.date.available2021-05-15T18:18:39Z
dc.date.issued2020eng
dc.description.abstractThe CaO-SiO2 glass forming system is a typical example of a situation when the Shakhmatkin and Vedishcheva thermodynamic model cannot explain the experimentally determined Q-units distribution. As the system components are determined as stable crystalline phases found in the equilibrium phase diagram, the reason of the model failure is the missing system component representing the Q(3) structural unit. We suggested a solution to the problem by adding an artificial CaO center dot 2SiO(2) component and we proposed a method of estimating the Gibbs energy of this component. The method is based on the linear relationship found between the reaction Gibbs energy of the formation of the system components representing the different Qn units (n = 3, 2, 1, 0) divided by the number of non-bridging oxygen atoms in this particular component (i.e., 4-n) on one side and the n value on the other side. The method was qualified by the good coincidence of the model results with the MAS NMR experimentally determined Q-distribution. Moreover, the estimated value of Gibbs energy practically coincides with the optimised value obtained by minimising the sum of the squares of the d eviations between the experimental and calculated Q-distribution with respect to the molar Gibbs energy of CaO center dot 2SiO(2).eng
dc.description.abstract-translatedTermodynamický model skel založených na systému CaO-SiO2 byl vytvořen na základě Shakhmatkin-Vedishcheva modelu a testován pomocí výsledků MAS NMR výsledků měření.cze
dc.formatp. 63-67eng
dc.identifier.doi10.13168/cs.2019.0049eng
dc.identifier.issn0862-5468eng
dc.identifier.obd39884907eng
dc.identifier.scopus2-s2.0-85082077222
dc.identifier.urihttps://hdl.handle.net/10195/77055
dc.identifier.wos000508638600007eng
dc.language.isoengeng
dc.peerreviewedyeseng
dc.publicationstatuspublished versioneng
dc.publisherVysoká škola chemicko-technologická v Prazeeng
dc.relation.ispartofCeramics-Silikaty, volume 64, issue: 1eng
dc.relation.publisherversionhttps://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1301eng
dc.rightsopen access (CC BY-NC-ND 3.0)eng
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/3.0/deed.en
dc.subjectthermodynamic modeleng
dc.subjectCaO-SiO2 glasseng
dc.subjectQ-distributioneng
dc.subjecttermodynamický modelcze
dc.subjectCaO-SiO2 sklocze
dc.subjectQ-distribucecze
dc.titleTHERMODYNAMIC MODEL OF CaO-SiO2 GLASSESeng
dc.title.alternativeTermodynamický model CaO-SiO2 skelcze
dc.typeArticleeng
dspace.entity.typePublication

Soubory

Původní svazek

Nyní se zobrazuje 1 - 1 z 1
Načítá se...
Náhled
Název:
Liska_CS_2019_0049.pdf
Velikost:
620.13 KB
Formát:
Adobe Portable Document Format