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dc.contributor.authorTolmachov, Volodymyr-
dc.contributor.authorRіabko, Andrii-
dc.contributor.authorHrudynin, Borys-
dc.contributor.authorMarynchenko, Yevhenii-
dc.contributor.authorRozhkova, Anastasia-
dc.contributor.authorIhnatieva, Viktoriia-
dc.date.accessioned2026-09-06T17:03:44Z-
dc.date.available2026-09-06T17:03:44Z-
dc.date.issued2026-
dc.date.submitted2025-10-30-
dc.identifier.issn1335-0617-
dc.identifier.issn2585-8890-
dc.identifier.urihttp://vat.ft.tul.cz/Archive/VaT_2026_1.html-
dc.identifier.urihttp://elartu.tntu.edu.ua/handle/lib/54017-
dc.description.abstractThe confluence of increasing global sustainability demands and the imperative for real-time quality control in advanced manufacturing systems provides the foundation for this study. We address this by initially conceptualizing an active robotic noise-mitigation panel based on flax fiber designed for autonomous deployment in landscaping and urban noise control environments. The feasibility of this active system, which relies on the dynamic manipulation of a passive flax core integrated with AI-driven sensing and actuation, is fundamentally dependent on precise and rapid assessment of the raw fiber’s acoustic potential and physicomechanical quality. Confronting the scarcity of suitable non-destructive pre-assessment techniques, this paper details the subsequent development and comprehensive validation of a novel methodology utilizing the sound absorption effect to characterize flax fiber quality. A specialized device was engineered and rigorously optimized, establishing critical operational parameters: a 10 g sample mass, an emitter frequency of 1750 Hz (optimally aligned with the λ/4 thickness), and a reference moisture content of 12%. The research successfully established a robust statistical correlation between the acoustic attenuation measurements and key industrial indicators, specifically linear density, breaking load, and flexibility. Statistical validation using the Student’s t-test confirmed a high degree of agreement with established standards (DSTU 4015-2001), demonstrating excellent reproducibility and high precision (relative expanded uncertainty below 5 %). Furthermore, empirical power and logarithmic regression formulas were derived to enable the direct calculation of quality parameters from the acoustic data. This integrated approach not only provides a reliable, rapid, and objective tool for industrial quality control, but also furnishes the essential material assessment capability required to transition sustainable flax materials into the demanding domain of smart, active noise-mitigation technologies.uk_UA
dc.format.extent27-40-
dc.language.isoenuk_UA
dc.publisherTechnical University of Liberecuk_UA
dc.subjectActive noise mitigationuk_UA
dc.subjectBreaking loaduk_UA
dc.subjectFlax fiberuk_UA
dc.subjectLinear densityuk_UA
dc.subjectNon-destructive testinguk_UA
dc.subjectQuality controluk_UA
dc.subjectSound absorptionuk_UA
dc.subjectSustainable materialsuk_UA
dc.titleDetermination of flax fiber quality indicators taking into account sound-absorbing properties for robotic landscaping systemsuk_UA
dc.typeArticleuk_UA
dc.rights.holder© Tolmachov Volodymyr, Rіabko Andrii, Hrudynin Borys, Marynchenko Yevhenii, Rozhkova Anastasia, Ihnatieva Viktoriia, 2026uk_UA
dc.coverage.placenameLiberecuk_UA
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dc.identifier.doi10.15240/tul/008/2026-1-004-
dc.contributor.affiliationOlexander Dovzhenko Hlukhiv National Pedagogical Universityuk_UA
dc.contributor.affiliationOlexander Dovzhenko Hlukhiv National Pedagogical Universityuk_UA
dc.contributor.affiliationNational University of Life and Environmental Sciences of Ukraineuk_UA
dc.contributor.affiliationOlexander Dovzhenko Hlukhiv National Pedagogical Universityuk_UA
dc.contributor.affiliationTaras Shevchenko Luhansk National Universityuk_UA
dc.contributor.affiliationTernopil Ivan Puluj National Technical Universityuk_UA
dc.citation.journalTitleFibres and Textiles-
dc.coverage.countryCZuk_UA
dc.identifier.citation2015Determination of flax fiber quality indicators taking into account sound-absorbing properties for robotic landscaping systems / V. Tolmachov et al. Fibres and Textiles. 2026. Vol. 33, no. 1. P. 27–40.uk_UA
dc.identifier.citationenAPATolmachov, V., Rіabko, A., Hrudynin, B., Marynchenko, Y., Rozhkova, A., & Ihnatieva, V. (2026). Determination of flax fiber quality indicators taking into account sound-absorbing properties for robotic landscaping systems. Fibres and Textiles, 33 (1), 27-40uk_UA
Розташовується у зібраннях:Наукові публікації працівників кафедри будівельної механіки

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