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http://elartu.tntu.edu.ua/handle/lib/54017| Titolo: | Determination of flax fiber quality indicators taking into account sound-absorbing properties for robotic landscaping systems |
| Autori: | Tolmachov, Volodymyr Rіabko, Andrii Hrudynin, Borys Marynchenko, Yevhenii Rozhkova, Anastasia Ihnatieva, Viktoriia |
| Affiliation: | Olexander Dovzhenko Hlukhiv National Pedagogical University Olexander Dovzhenko Hlukhiv National Pedagogical University National University of Life and Environmental Sciences of Ukraine Olexander Dovzhenko Hlukhiv National Pedagogical University Taras Shevchenko Luhansk National University Ternopil Ivan Puluj National Technical University |
| Bibliographic reference (2015): | Determination 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. |
| Bibliographic citation (APA): | Tolmachov, 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), 27-40 |
| Journal/Collection: | Fibres and Textiles |
| Data: | 2026 |
| Submitted date: | 30-ott-2025 |
| Date of entry: | 6-set-2026 |
| Editore: | Technical University of Liberec |
| Country (code): | CZ |
| Place of the edition/event: | Liberec |
| DOI: | 10.15240/tul/008/2026-1-004 |
| Parole chiave: | Active noise mitigation Breaking load Flax fiber Linear density Non-destructive testing Quality control Sound absorption Sustainable materials |
| Page range: | 27-40 |
| Abstract: | The 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. |
| URI: | http://vat.ft.tul.cz/Archive/VaT_2026_1.html http://elartu.tntu.edu.ua/handle/lib/54017 |
| ISSN: | 1335-0617 2585-8890 |
| Copyright owner: | © Tolmachov Volodymyr, Rіabko Andrii, Hrudynin Borys, Marynchenko Yevhenii, Rozhkova Anastasia, Ihnatieva Viktoriia, 2026 |
| References (International): | Tolmachov V., Riabko A.: Use of arduino-compatible systems in devices for determination of color indicators of flax fiber, Vlakna a Textil, 29(4), 2023, pp. 45-60. Bi Z., Li Q., Zhang Z., et al.: Experimental and numerical evaluation of the influence of voids on sound absorption behaviors of 3D printed continuous flax fiber reinforced PLA composites, Composites Science and Technology, 2024 110720 P. Sathesh Babu M., Ramamoorthi R., Gokulkumar S., et al.: Mahua oil cake microcellulose as a performance enhancer in flax fiber composites: mechanical strength and sound absorption analysis, Polymer Composites, 2024, pp. 1-20 Periyasamy D., Manoharan B., Arockiasamy F.S., et al.: Exploring the recycling potential of HDPE films reinforced with flax fiber for making sustainable decorative tiles, Journal of Materials Research and Technology, 25, 2023, pp. 2049- 2060. Bhuvaneswari V., Devarajan B., Arulmurugan B., et al.: A critical review on hygrothermal and sound absorption behavior of natural-fiber-reinforced polymer composites, Polymers, 14(21), 2022, 4727 P Haris A., Kureemun U., Tran L.Q.N., et al.: Water uptake and its effects on mechanical and acoustic properties of flax/polypropylene composite, Journal of Natural Fibers, 18(9), 2021, pp. 1344-1358. Gliscinska E., Perez de Amezaga J., Michalak M., et al.: Green sound-absorbing composite materials of various structure and profiling, Coatings, 11(4), 2021, 407 P. Mohammadi M., Taban E., Tan W.H., et al.: Recent progress in natural fiber reinforced composite as sound absorber material, Journal of Building Engineering, 2024, 108514 P Kudva A., Gt M., Pai K.D.: Physical, thermal, mechanical, sound absorption and vibration damping characteristics of natural fiber reinforced composites and hybrid fiber reinforced composites: A review, Cogent Engineering, 9(1), 2022, 2107770 P. Madushika J.W.A., Lanarolle W.D.G.: A review on novel approaches to enhance sound absorbing performance using textile fibers, The Journal of The Textile Institute, 113(2), 2022, pp. 341-348 Gumanová V., Sobotová L., Dzuro T., et al.: Experimental survey of the sound absorption performance of natural fibres in comparison with conventional insulating materials, Sustainability, 14(7), 2022, 4258 P Su J., Yang X., Yao Y., et al.: Advanced three-dimensional textile technique for fabrication of sisal/flax hybrid fiber green biocomposite with enhanced mechanical, thermal, and sound isolation properties, Industrial Crops and Products, 223, 2025, 120174 P Rotini F., Fiorineschi L., Conti L., et al.: Investigating Polylactic Acid Foam–Plant Fiber Composites for Sound Absorption and Insulation, Sustainability, 16(16), 2024, 6913 P Liang M., Wu H., Liu J., et al.: Improved sound absorption performance of synthetic fiber materials for industrial noise reduction: A review, Journal of Porous Materials, 29(3), 2022, pp. 869-892. Jang E.S.: Sound absorbing properties of selected green material. A review, Forests, 14(7), 2023, 1366 P. Sleinus D., Sinka M., Korjakins A., et al.: Properties of sound absorption composite materials developed using flax fiber, sphagnum moss, vermiculite, and sapropel. Materials, 16(3), 2023, 1060 P Yang T., Hu L., Xiong X., et al.: Sound absorption properties of natural fibers: A review. Sustainability, 12(20), 2020, 8477 P. |
| Content type: | Article |
| È visualizzato nelle collezioni: | Наукові публікації працівників кафедри будівельної механіки |
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