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dc.contributor.authorKrzysiak, Zbigniew
dc.contributor.authorGevorkyan, Edwin
dc.contributor.authorNerubatskyi, Volodymyr
dc.contributor.authorRucki, Miroslaw
dc.contributor.authorChyshkala, Volodymyr
dc.contributor.authorCaban, Jacek
dc.contributor.authorMazur, Tomasz
dc.date.accessioned2023-09-18T16:25:16Z
dc.date.available2023-09-18T16:25:16Z
dc.date.issued2022
dc.identifier.other(WOS_ID)000851703400001
dc.identifier.urihttps://etalpykla.vilniustech.lt/handle/123456789/113694
dc.description.abstractThis paper is devoted to the sintering process of Al2O3–SiO2–ZrO2 ceramics. The studied method was electroconsolidation with directly applied electric current. This method provides substantial improvements to the mechanical properties of the sintered samples compared to the traditional sintering in the air. The research covered elemental and phase analysis of the samples, which revealed phase transition of high-alumina solid solutions into mullite and corundum. Zirconia was represented mainly by tetragonal phase, but monoclinic phase was present, too. Electroconsolidation enabled samples to reach a density of 3.0 g/cm3 at 1300 °C, while the sample prepared by traditional sintering method obtained it only at 1700 °C. For the composite Al2O3—20 wt.% SiO2—10 wt.% ZrO2 fabricated by electroconsolidation, it was demonstrated that fracture toughness was higher by 20–30%, and hardness was higher by 15–20% compared to that of samples sintered traditionally. Similarly, the samples fabricated by electroconsolidation exhibited elastic modulus E higher by 15–20%. The hypothesis was proposed that the difference in mechanical and physical properties could be attributed to the peculiarities of phase formation processes during electroconsolidation.eng
dc.formatPDF
dc.format.extentp. 1-14
dc.format.mediumtekstas / txt
dc.language.isoeng
dc.relation.isreferencedbyScience Citation Index Expanded (Web of Science)
dc.relation.isreferencedbyScopus
dc.titlePeculiarities of the phase formation during electroconsolidation of Al2O3-SiO2-ZrO2 powders mixtures
dc.typeStraipsnis Web of Science DB / Article in Web of Science DB
dcterms.accessRightsThis 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/).
dcterms.licenseCreative Commons – Attribution – 4.0 International
dcterms.references37
dc.type.pubtypeS1 - Straipsnis Web of Science DB / Web of Science DB article
dc.contributor.institutionUniversity of Life Sciences in Lublin
dc.contributor.institutionUkraine State University of Railway Transport
dc.contributor.institutionVilniaus Gedimino technikos universitetas
dc.contributor.institutionV. N. Karazin Kharkiv National University Instytut Technologii Ekspoatacji w Radomiu
dc.contributor.institutionLublin University of Technology
dc.contributor.institutionKazimierz Pulaski University of Technology and Humanities in Radom
dc.contributor.facultyMechanikos fakultetas / Faculty of Mechanics
dc.contributor.departmentMechanikos mokslo institutas / Institute of Mechanical Science
dc.subject.researchfieldT 009 - Mechanikos inžinerija / Mechanical enginering
dc.subject.studydirectionE06 - Mechanikos inžinerija / Mechanical engineering
dc.subject.vgtuprioritizedfieldsMC0101 - Mechatroninės gamybos sistemos Pramonė 4.0 platformoje / Mechatronic for Industry 4.0 Production System
dc.subject.ltspecializationsL104 - Nauji gamybos procesai, medžiagos ir technologijos / New production processes, materials and technologies
dc.subject.enceramic composite
dc.subject.enAl2O3-SiO2-ZrO2
dc.subject.enelectroconsolidation
dc.subject.enmullite
dc.subject.encorundum
dc.subject.englassy phase
dc.subject.enrefractory
dc.subject.enXRD
dc.subject.enzirconia
dc.subject.enelasticity
dcterms.sourcetitleMaterials
dc.description.issueiss. 17
dc.description.volumevol. 15
dc.publisher.nameMDPI
dc.publisher.cityBasel
dc.identifier.doi000851703400001
dc.identifier.doi140332983
dc.identifier.doi10.3390/ma15176073
dc.identifier.elaba140701444


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