SCIENTIFIC SIGNIFICANCE OF THE INTRODUCTION OF ELECTROSTATIC DUST SEPARATION TECHNOLOGIES IN COTTON CLEANING CROWNS
Main Article Content
Abstract
Reducing dust emissions in the cotton ginning industry is a pressing environmental and industrial challenge. This study examines the applicability, efficiency, and energy performance of electrostatic dust collection technologies (ESP) at cotton cleaning plants (cotton gins). Given that Uzbekistan’s current environmental regulations allow higher permissible dust concentrations than the standards of the World Health Organization (WHO) and the U.S. Environmental Protection Agency (EPA), we analyze ways to protect ambient air quality through the deployment of electrostatic precipitators. In both laboratory and industrial settings, we conducted a comparative assessment of the physico-chemical properties of dust particles and the effectiveness of existing dust-control methods. The results show that ESP technology captures particles down to 0.01 μm with 99.9% efficiency while using less energy than alternative methods. Large-scale implementation of this technology is a key factor in ensuring environmental safety, protecting worker health, and aligning industrial production with international standards.
Downloads
Article Details
Issue
Section

This work is licensed under a Creative Commons Attribution 4.0 International License.
Public License Terms
(For Open Journal Systems (OJS))
-
Copyright:
The copyright of the published article remains with the author(s). However, after publication, the article is distributed on the OJS platform under the Creative Commons (CC BY) license. -
License Type:
This article is distributed under the Creative Commons Attribution 4.0 International (CC BY 4.0) license. This means users can utilize the article under the following conditions:- Copy and distribute: The text of the article or its parts can be freely distributed.
- Quote and analyze: Parts of the article can be used for quoting and analysis.
- Free use: The article can be freely used for research and educational purposes.
- Attribution: Users must provide proper attribution and reference to the original source.
-
Commercial use:
The article can be used for commercial purposes, provided that authorship and source are properly cited. -
Document modification:
The text or content of the article can be modified or adapted, as long as it does not harm the authorship. -
Liability disclaimer:
The author(s) are responsible for the accuracy of the information contained in the article. The editorial team of the platform is not liable for any damages resulting from the use of this information. -
Public usage obligations:
The content of the article must be used only in accordance with legal and ethical standards. Unauthorized use is strictly prohibited.
Note:
These license terms are designed to ensure transparency and openness in material usage. By accepting these terms, you agree to the adaptation and distribution of the article content under the terms of the Creative Commons license.
Link: Creative Commons Attribution 4.0 International (CC BY 4.0)
How to Cite
References
1. O‘zDSt 3286:2018 – Havoning ifloslanish darajasini o‘lchash bo‘yicha talablar. O‘zbekiston Davlat Standarti.
2. World Health Organization (WHO). “Air Quality Guidelines – Global Update 2005”, WHO Regional Office for Europe, Copenhagen, Denmark.
3. United States Environmental Protection Agency (EPA). “National Ambient Air Quality Standards (NAAQS)”, U.S. Environmental Protection Agency, Washington, D.C.
4. Hinds, W. C. (1999). Aerosol Technology: Properties, Behavior, and Measurement of Airborne Particles. John Wiley & Sons.
5. Kim, S. C., & Lee, J. H. (2016). "Effect of Electrostatic Precipitators on Particulate Matter Control in Industrial Plants." Journal of Industrial Pollution Control, 32(1), 112-118.
6. Ilyosov, A., & Nazarov, M. (2021). "Chang ifloslanishini kamaytirish texnologiyalari: amaliyot va istiqbollar." O‘zbekiston Texnika Universiteti Ilmiy Jurnali, 5(3), 45-52.
7. Zaitsev, I. V., & Ivanov, P. A. (2020). "Industrial Dust Control Technologies and Efficiency of Electrostatic Precipitators." International Journal of Environmental Science, 14(2), 210-218.
8. European Environment Agency (EEA). “Air Quality in Europe – 2023 Report”, Luxembourg: Publications Office of the European Union, 2023.
9. U.S. Department of Energy (DOE). “Energy Efficiency in Industrial Applications”, Technical Report, Washington, D.C., 2022.
10. International Electrotechnical Commission (IEC). “Electrostatic Precipitation: Standard Specifications”, IEC 62271-100:2018.