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dc.contributor.authorКошкін, Дмитро Леонідович-
dc.contributor.authorKoshkin, Dmitriy-
dc.contributor.authorВахоніна, Лариса Володимирівна-
dc.contributor.authorVakhonina, Larisa-
dc.contributor.authorЦиганов, Олександр Миколайович-
dc.contributor.authorTsyiganov, Aleksandr-
dc.contributor.authorСуковіцина, Ірина Миколаївна-
dc.contributor.authorSukovitsyna, Iryna-
dc.date.accessioned2026-05-08T10:54:27Z-
dc.date.available2026-05-08T10:54:27Z-
dc.date.issued2026-
dc.identifier.citationKoshkin, D., Vakhonina, L., Tsyganov, A., & Sukovitsyna, I. (2026). Digital Twin for Integration of Control and Diagnostics of Electromechanical Systems Under Uncertainty. ITEGAM-JETIA, 12(58), 1447-1458. https://doi.org/10.5935/jetia.v12i58.3405uk_UA
dc.identifier.urihttps://dspace.mnau.edu.ua/jspui/handle/123456789/25324-
dc.description.abstractThe study aimed to create a digital twin for the integration of control and diagnostics of electromechanical systems under conditions of uncertainty, with minimal reliance on physical sensors. The research was conducted at Mykolaiv National Agrarian University. Physically based models were developed for thermal processes in windings, assessment of losses in magnetic conductors, and wear indicators for components, virtual sensors, signal filtering algorithms and degradation prediction were implemented, and verification was conducted on test benches and in computer modelling. Quantitative results were obtained, which constitute the main contribution of the work: the accuracy of reproducing hidden parameters was 93.6-97%, the relative error of reproducing losses in the transformer was 3%, the relative error of thermal estimates was 3.5-6.8%, the correlation with reference measurements reached 0.99; the reduction in the dispersion of noisy signals was 33-41%, the signal-to-noise ratio increased by 4.2-6.7 decibels, and the root mean square error decreased by 35-44% with an additional delay of no more than 0.04 seconds. The models can be used in ship drives, biogas plants, robotic lines, irrigation pumping stations, transformer substations, hydraulic drives and traction electric drives, reducing downtime and energy consumption without changing the existing control infrastructure.uk_UA
dc.language.isoenuk_UA
dc.subjectFiltrationuk_UA
dc.subjectMagnetic saturationuk_UA
dc.subjectModellinguk_UA
dc.subjectResource predictionuk_UA
dc.subjectTorsional loadsuk_UA
dc.subjectVirtual sensorsuk_UA
dc.titleDigital Twin for Integration of Control and Diagnostics of Electromechanical Systems Under Uncertaintyuk_UA
dc.typeArticleuk_UA
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