REAL-TIME MEASUREMENT OF COTTON MOISTURE BASED ON CHANGES IN THE DIELECTRIC PROPERTIES OF THE FIBER

Main Article Content

Khamzaev, D.I.

Abstract

Moisture control of raw cotton is a key factor in ensuring product quality in the light industry and plays an important role at all stages of the technological chain, from primary processing and transportation to warehouse storage. Modern electrical measuring devices based on the analysis of electrical resistance and dielectric properties of the material enable rapid and highly accurate determination of moisture content and can be readily integrated into automated and mechatronic control systems. This study provides a detailed analysis of the physical principles underlying the operation of electrical moisture meters, describes the specific features of their application in cotton processing technologies, examines their advantages and existing limitations, and identifies directions for further improvement. In addition, a module developed by the authors is presented that provides continuous real-time monitoring of cotton fiber moisture directly during the production process.

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Article Details

Section

Light Industry Sectors

Author Biography

Khamzaev, D.I., JSC “Fargʻonaazot”

System Administrator, JSC “Fargʻonaazot”, Fergana, Uzbekistan

How to Cite

Khamzaev, D. I. (2026). REAL-TIME MEASUREMENT OF COTTON MOISTURE BASED ON CHANGES IN THE DIELECTRIC PROPERTIES OF THE FIBER. Digital Technologies in Industry, 4(3). https://doi.org/10.70769/3030-3214.SRT.4.3.2026.10

References

[1] Курбатов, С. А. (2019). Методы измерения влажности волокнистых материалов. Легпромиздат.

[2] Goyal, R. K., et al. (2020). Moisture measurement techniques for agricultural products: A review. Journal of Agricultural Engineering.

[3] Карасёв, А. П. (2021). Электрические свойства текстильных материалов. Текстильная промышленность.

[4] Хамзаев, Д. И. (2025). Быстрое определение влажности хлопка. Цифровые технологии в промышленности, 3(4), 236–239. https://doi.org/10.70769/3030-3214.SRT.3.4.2025.8

[5] Хамзаев, Д. (2025). Современные методы и технологические подходы к оперативному определению влажности хлопка. Ta’lim, fan va innovatsiya, (5).

[6] Хамзаев, Д. И. (2025). Современные методы и технологии для быстрого определения влажности хлопка. https://doi.org/10.5281/zenodo.16939010 DOI: https://doi.org/10.70769/3030-3214.SRT.3.4.2025.8

[7] Хамзаев, Д. (2025). Инфракрасные влагомеры хлопка: принципы действия, особенности и перспективы применения. TechScience.Uz – Topical Issues of Technical Sciences, 3(11), 40–45. https://doi.org/10.47390/ts-v3i11y2025No5 DOI: https://doi.org/10.47390/ts-v3i11y2025No5

[8] Хамзаев, Д. И. (2024). Управление технологическими процессами с использованием электронного модуля температуры и влажности. Sanoatda raqamli texnologiyalar / Цифровые технологии в промышленности, 2(4-1), 124–130. DOI: https://doi.org/10.70769/3030-3214.SRT.2.4-1.2024.5

[9] Yang, L., & Wu, D. (2019). Real-time moisture detection in cotton using microwave sensing. Applied Thermal Engineering, 163, 114376. https://doi.org/10.1016/j.applthermaleng.2019.114376 DOI: https://doi.org/10.1016/j.applthermaleng.2019.114376

[10] Chen, Y., Zhang, H., & Wang, X. (2020). Design and optimization of a cotton drying control system based on infrared technology. Journal of Textile Engineering, 36(4), 245–252.

[11] AQUA-LAB. (n.d.). Влагомеры хлопка. https://xn----7sbabfc9cl.xn--p1ai/253-vlagomery-khlopka

[12] Smith, J., & Brown, T. (2023). Advances in impedance-based moisture sensors. IEEE Transactions on Instrumentation and Measurement.

[13] Соловьёв, С. А. (2021). Инфракрасные методы измерения влажности. Наука.

[14] Bannon, D. I. (2020). Near-infrared spectroscopy for agricultural moisture measurement. Applied Spectroscopy Reviews.

[15] Лысенко, В. Н. (2019). Влагомерный контроль текстильного сырья. Текстильная промышленность.

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