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Publikace:
Thermal decomposition of mixed calcium oxalate hydrates - kinetic deconvolution of complex heterogeneous processes

Článekopen accesspeer-reviewedpostprint
dc.contributor.authorSvoboda, Romancze
dc.contributor.authorOlmrová Zmrhalová, Zuzanacze
dc.contributor.authorGalusek, Dusancze
dc.contributor.authorBrandová, Danielacze
dc.contributor.authorChovanec, Jozefcze
dc.date.accessioned2021-05-15T18:21:07Z
dc.date.available2021-05-15T18:21:07Z
dc.date.issued2020eng
dc.description.abstractDifferential scanning calorimetry (DSC), thermogravimetry (TG) and in situ XRD were used to study dehydration and consequent decomposition reactions of mixed calcium oxalate hydrates. As the complex dehydration kinetics exhibited certain trends with respect to the applied heating rate, the modified multivariate kinetic analysis approach (based on averaged curve-by-curve optimizations) was employed to obtain a full kinetic description of the data. The Sestak-Berggren equation was used to model the two consequent dehydration reactions. Good agreement was found between the kinetic parameters calculated from the DSC and TG data - approximate values of activation energies were 68 and 81 kJ mol(-1) for the trihydrate -> monohydrate and monohydrate -> anhydride transformations, respectively. A procedural methodology was developed to predict both dehydration kinetics and hydrate content ratios. For the calcium oxalate decomposition the TG technique provided very precise single-step prediction with an activation energy of 180 kJ mol(-1). DSC on the other hand provided complex information on joint decomposition and carbon monoxide oxidation reactions - the proposed reaction mechanism includes completion of two reaction paths composed of consequent chemical reactions. A mechanistic view of the complex reaction path is discussed in terms of the diffusion barrier limiting the oxidation step.eng
dc.description.abstract-translatedDehydratace a následný rozklad hydrátů šťavelanu vápenatého byly studovány pomocí DSC, TG a in situ XRD. Výsledky byly zpracovány za účelem dekonvoluce probíhajících procesů a stanovení kinetiky jednotlivých dějů.cze
dc.formatp. 8889-8901eng
dc.identifier.doi10.1039/c9cp06867heng
dc.identifier.issn1463-9076eng
dc.identifier.obd39884916eng
dc.identifier.scopus2-s2.0-85084167373
dc.identifier.urihttps://hdl.handle.net/10195/77080
dc.identifier.wos000537175100062eng
dc.language.isoengeng
dc.peerreviewedyeseng
dc.publicationstatuspostprinteng
dc.publisherRoyal Society of Chemistryeng
dc.relation.ispartofPhysical Chemistry Chemical Physics, volume 22, issue: 16eng
dc.relation.publisherversionhttps://pubs.rsc.org/en/content/articlelanding/2020/CP/C9CP06867H#!divAbstracteng
dc.rightsbez omezenícze
dc.subjecturinary calculieng
dc.subjectcrystal-growtheng
dc.subjectkidney-stoneseng
dc.subjectactivation-energyeng
dc.subjectphase-changeeng
dc.subjectdehydrationeng
dc.subjectwhewelliteeng
dc.subjectcrystallizationeng
dc.subjectramaneng
dc.subjectprecipitationeng
dc.subjectštavelan vápenatýcze
dc.subjecthydrátcze
dc.subjectdehydratacecze
dc.subjectrozkladcze
dc.subjectDSCcze
dc.subjectTGcze
dc.subjectin situ XRDcze
dc.subjectkinetikacze
dc.subjectdekonvolucecze
dc.titleThermal decomposition of mixed calcium oxalate hydrates - kinetic deconvolution of complex heterogeneous processeseng
dc.title.alternativeTepelný rozklad směsných hydrátů šťavelanu vápenatého - kinetická dekonvoluce heterogenních procesůcze
dc.typeArticleeng
dspace.entity.typePublication

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