Application of high-entropy alloys in strain sensors

dc.citation.epage47
dc.citation.issue2
dc.citation.journalTitleВимірювальна техніка та метрологія
dc.citation.spage43
dc.contributor.affiliationLviv Polytechnic National University
dc.contributor.affiliationLviv Polytechnic National University
dc.contributor.authorHamyla, Pavlo
dc.contributor.authorMyhal, Mykhaylo
dc.coverage.placenameЛьвів
dc.coverage.placenameLviv
dc.date.accessioned2025-11-25T13:14:05Z
dc.date.created2025-06-20
dc.date.issued2025-06-20
dc.description.abstractThis article investigates the physicochemical properties of the high-entropy alloy MoNbTaVW and its potential application in strain gauge sensors for structural health monitoring of composite constructions, particularly wind turbines. The material’s suitability for accurate mechanical tension measurements is analyzed, taking into account its high thermal stability, resistance to corrosion, and tolerance to radiation exposure. It is demonstrated that MoNbTaVW maintains structural integrity at elevated temperatures, outperforming conventional metals commonly used in sensing systems. Special attention is given to the alloy’s compatibility with composite materials such as carbon fiber reinforced polymers (CFRP) and glass fiber reinforced polymers (GFRP), aiming to prevent delamination and minimize residual tensions. The mechanisms are analyzed, by which the alloy’s defect structure influences its electrical resistance, which are critical for the stability of strain gauge sensor performance. The unique crystalline structure of the high-entropy alloy is shown to reduce vacancy migration, ensuring long-term stability of electrical properties. Methods for applying MoNbTaVW as thin-film covering are discussed, with emphasis on their impact on sensor sensitivity. A detailed analysis of magnetron sputtering processes is presented, highlighting the importance of preserving film uniformity and minimizing residual tensions. It is shown that controlling deposition parameters, including working pressure and substrate temperature, significantly affects the electromechanical characteristics of the material. The article also explores calibration techniques for strain gauge sensors, particularly accounting for distortion effects under biaxial loading. It is demonstrated that mathematical models based on the Euler- Bernoulli beam theory can reduce measurement error by providing more accurate tension estimations within the structure. The findings confirm that integrating the MoNbTaVW high-entropy alloy into sensor systems enhances their durability, sensitivity, and operational stability in wind energy applications.
dc.format.extent43-47
dc.format.pages5
dc.identifier.citationHamyla P. Application of high-entropy alloys in strain sensors / Pavlo Hamyla, Mykhaylo Myhal // Measuring Equipment and Metrology. — Lviv : Lviv Politechnic Publishing House, 2025. — Vol 86. — No 2. — P. 43–47.
dc.identifier.citation2015Hamyla P., Myhal M. Application of high-entropy alloys in strain sensors // Measuring Equipment and Metrology, Lviv. 2025. Vol 86. No 2. P. 43–47.
dc.identifier.citationenAPAHamyla, P., & Myhal, M. (2025). Application of high-entropy alloys in strain sensors. Measuring Equipment and Metrology, 86(2), 43-47. Lviv Politechnic Publishing House..
dc.identifier.citationenCHICAGOHamyla P., Myhal M. (2025) Application of high-entropy alloys in strain sensors. Measuring Equipment and Metrology (Lviv), vol. 86, no 2, pp. 43-47.
dc.identifier.doihttps://doi.org/10.23939/istcmtm2025.02.043
dc.identifier.urihttps://ena.lpnu.ua/handle/ntb/121881
dc.language.isoen
dc.publisherВидавництво Львівської політехніки
dc.publisherLviv Politechnic Publishing House
dc.relation.ispartofВимірювальна техніка та метрологія, 2 (86), 2025
dc.relation.ispartofMeasuring Equipment and Metrology, 2 (86), 2025
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dc.rights.holder© Національний університет „Львівська політехніка“, 2025
dc.subjectelectrical resistance
dc.subjectcomposite materials
dc.subjectbiaxial loading
dc.subjectmagnetron sputtering
dc.subjectsensor calibration
dc.subjectwind turbines
dc.titleApplication of high-entropy alloys in strain sensors
dc.typeArticle

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