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dc.contributor.authorKilikevičius, Artūras
dc.contributor.authorSkeivalas, Jonas
dc.contributor.authorJurevičius, Mindaugas
dc.contributor.authorKilikevičienė, Kristina
dc.contributor.authorTurla, Vytautas
dc.contributor.authorToločka, Eligijus
dc.contributor.authorČernašėjus, Olegas
dc.contributor.authorČernašėjienė, Raimonda
dc.date.accessioned2023-09-18T17:47:46Z
dc.date.available2023-09-18T17:47:46Z
dc.date.issued2019
dc.identifier.issn0020-2940
dc.identifier.urihttps://etalpykla.vilniustech.lt/handle/123456789/126129
dc.description.abstractThe article analyzes vibrational oscillation’s strength dissemination and the parameters in the centering and leveling table using the covariance function theory. The implementation of measurement techniques requires to use most advanced ideas, and to seek and develop new tools, based on which the direction of angle calibration system’s development could be substantiated and calibration methodologies could be enabled. Vibrational oscillation strength measurements across fixed five ring points’ observations were recorded on a time scale in five vectors arrays (matrices). The covariance functions have enabled the evaluation of the influence of the vibrations of the corresponding rings on the accuracy of the measurement results. Expressions of auto-covariance and cross-covariance functions show the changes in the time scale of the interdependence between the parameters of the corresponding vibrations of the rings on the smoothing device. These changes significantly affect the measurement data errors. The digital vibrational strength measurement arrays’ reciprocal covariance functions were calculated, and estimates of individual arrays’ auto-covariance functions, by changing the quantization interval on the time scale. The covariance model proposed by the authors for the analysis of the dynamical parameters of the centering–leveling devices can be used to investigate the dynamic characteristics of the angular comparators containing the said devices and at the same time to determine the ways of improving the precision of these angular comparators. The calculations were carried out using the special computer program developed by the authors of the Matlab7 Operator Package (The MathWorks, Inc. R2012a 7.14.0.739 License Number 699298).eng
dc.formatPDF
dc.format.extentp. 222-228
dc.format.mediumtekstas / txt
dc.language.isoeng
dc.relation.isreferencedbyCompendex
dc.relation.isreferencedbyScopus
dc.relation.isreferencedbyScience Citation Index Expanded (Web of Science)
dc.source.urihttps://journals.sagepub.com/doi/pdf/10.1177/0020294019830109
dc.titleTheoretical and experimental analysis of dynamic parameters of the leveling and centering device
dc.typeStraipsnis Web of Science DB / Article in Web of Science DB
dcterms.references17
dc.type.pubtypeS1 - Straipsnis Web of Science DB / Web of Science DB article
dc.contributor.institutionVilniaus Gedimino technikos universitetas
dc.contributor.facultyMechanikos fakultetas / Faculty of Mechanics
dc.subject.researchfieldT 009 - Mechanikos inžinerija / Mechanical enginering
dc.subject.researchfieldT 008 - Medžiagų inžinerija / Material engineering
dc.subject.researchfieldT 010 - Matavimų inžinerija / Measurement engineering
dc.subject.researchfieldS 003 - Vadyba / Management
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.envibration signals
dc.subject.enleveling
dc.subject.encentering
dc.subject.encovariance function
dc.subject.enquantization interval
dcterms.sourcetitleMeasurement and control
dc.description.issueiss. 3-4
dc.description.volumevol. 52
dc.publisher.nameSAGE
dc.publisher.cityLondon
dc.identifier.doi000482917200008
dc.identifier.doi10.1177/0020294019830109
dc.identifier.elaba35270050


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