•  
  •  
 

Abstract

This scientific work analyzes the research on data collection and transmission technologies for automatic control of high-frequency ozonators in water disinfection. The purpose of the study is to improve disinfection efficiency and optimize the system's operation by using IoT and artificial intelligence technologies in the control of ozonators. During the study, data collected by sensors were processed in real time through an IoT system and analyzed using artificial intelligence. Results showed that the efficiency of ozonator control increased by 25%, and ozone consumption was reduced by 20%. The use of a PID controller allowed for a 15% reduction in the duration of the disinfection process. The application of sensor networks reduced system downtime by 10%, ensuring continuous operation. Service costs were reduced by up to 30%, improving economic efficiency. These results proved the effectiveness of integrating IoT and artificial intelligence technologies. Furthermore, this method offers an environmentally friendly solution. In conclusion, improving the automatic control systems of ozonators is a significant step towards enhancing the water disinfection process.

First Page

35

Last Page

41

References

1. Pichel, N., Vivar, M., Fuentes, M. (2019). The problem of drinking water access: A review of disinfection technologies with an emphasis on solar treatment methods. Chemosphere. 218. 1014-1030. https://doi.org/10.1016/j.chemosphere.2018.11.205

2. Sullivan, P., Agardy, F.J., Clark, J.J.J. (2005). The environmental science of drinking water. Elsevier, 367 p.

3. Akpor, O.B., Muchie, B. (2011). Environmental and public health implications of wastewater quality. African Journal of Biotechnology. 10(13). 2379-2387.

4. Abdykadyrov, A. A. et al. (2020). Practical Research of Efficiency of the Installation Etro-02 Ozonizer Based on the Corona Discharge. 2020 International Youth Conference on Radio Electronics, Electrical and Power Engineering (REEPE). – IEEE, 1-5. DOI: 10.1109/REEPE49198.2020.9059150

5. Abdykadyrov, A.A. et al. (2021). Research of the process of disinfection and purification of drinking water using ETRO-02 plant based on high-frequency corona discharge. 2021 3rd International Youth Conference on Radio Electronics, Electrical and Power Engineering (REEPE). – IEEE, 1-4. DOI: 10.1109/REEPE51337.2021.9388046

6. Abdykadyrov, A. et al. (2023). Investigation of the Efficiency of the Ozonator in the Process of Water Purification Based on the Corona Discharge. Journal of Ecological Engineering. 24(2). DOI: https://doi.org/10.12911/22998993/156610

7. Wysok, B., Uradziñski, J., Gomólka-Pawlicka, M. (2006). Ozone as an alternative disinfectant-a review. Polish Journal of Food and Nutrition Sciences. 15/56(1). 3-8.

8. Abdykadyrov, A. et al. (2023). Study of The Process of Cleaning Water-Containing Iron Solutions Using Ozone Technology. Water Conservation & Management. 7(2). 148-157. DOI: http://doi.org/10.26480/wcm.02.2023.148.157

9. Wei, C. et al. (2017). Ozonation in water treatment: the generation, basic properties of ozone and its practical application. Reviews in Chemical Engineering. 33(1). 49-89. https://doi.org/10.1515/revce-2016-0008

10. Onay, A. et al. (2021). Real time air and water quality monitoring based on distributed sensor network. 2021 6th International Conference on Computer Science and Engineering (UBMK). – IEEE, 118-123. DOI: 10.1109/UBMK52708.2021.9558881

11. Abdykadyrov, A. et al. (2023). Study of the process of destruction of harmful microorganisms in water. Water. 15(3). 503. https://doi.org/10.3390/w15030503

12. Weissert, L. F. et al. (2017). Use of a dense monitoring network of low-cost instruments to observe local changes in the diurnal ozone cycles as marine air passes over a geographically isolated urban centre. Science of The Total Environment. 575. 67-78. https://doi.org/10.1016/j.scitotenv.2016.09.229

13. Poznyak, T., Oria, J.I.C., Poznyak, A.S. (2018). Ozonation and biodegradation in environmental engineering: dynamic neural network approach. Elsevier, 511 p.

14. Abdykadyrov, A. et al. (2023). Research of the process of ozonation and sorption filtration of natural and anthropogenicly pollated waters. Journal of Environmental Management & Tourism. 14(3). 811-822. https://doi.org/10.14505/jemt.v14.3(67).20.

15. Kıdak, R., Doğan, Ş. (2018). Medium-high frequency ultrasound and ozone based advanced oxidation for amoxicillin removal in water. Ultrasonics sonochemistry. 40. 131-139. https://doi.org/10.1016/j.ultsonch.2017.01.033

16. Abdykadyrov, A. et al. (2024). Purification of surface water by using the corona discharge method. Mining of Mineral Deposits. 18(1). https://doi.org/10.33271/mining18.01.125

17. Kadri, A. et al. (2013). Wireless sensor network for real-time air pollution monitoring. 2013 1st international conference on communications, signal processing, and their applications (ICCSPA). IEEE, 1-5. DOI: 10.1109/ICCSPA.2013.6487323

18. Epelle, E.I. et al. (2023). Automation of large-scale gaseous ozonation: a case study of textile and PPE decontamination. Sustainability. 15(3). 2216. https://doi.org/10.3390/su15032216

19. Abdykadyrov A. et al. (2024). Study of the process of neutralization of microorganisms in drinking water exposed to environmental problems. Water Conservation & Management (WCM). 8(3) (2024). 352-361 DOI: http://doi.org/10.26480/wcm.03.2024.352.361

20. Abdykadyrov, A. et al. (2024). Study of the process of neutralizing and oxidizing harmful phenol compounds in wastewater using ozone technology. Water Conservation & Management (WCM). 8(4) (2024). 420-429 DOI 10.26480/wcm.04.2024.420.429

21. Botturi, A. et al. (2021). Combined sewer overflows: A critical review on best practice and innovative solutions to mitigate impacts on environment and human health. Critical Reviews in Environmental Science and Technology. 51(15). 1585-1618. https://doi.org/10.1080/10643389.2020.1757957

22. Assaf, R., Okut, N., Asmatulu, E. (2024). Unlocking the Potential of Internet of Things in Aquaculture: Addressing Challenges and Exploring Future Trends. Adv. Eng. Tec. Appl. 13(1), 117-130.

23. Smailov, N. et al. (2024). Fiber laser-based two-wavelength sensors for detecting temperature and strain on concrete structures. International Journal of Innovative Research and Scientific Studies. 7(4). 1693-1710. https://doi.org/10.53894/ijirss.v7i4.3481

24. Kalandarov, P.I. (2022). High-Frequency Moisture Meter for Measuring the Moisture Content of Grain and Grain Products. Measurement Techniques, 65(4), 297-303. https://doi.org/10.1007/s11018-022-02082-9

25. Nikolaev, A., Logunova, O., Garbar, E., Arkulis, M., Kalandarov, P. (2021). Estimation of The Surface Quality Of Galvanazed Steel: The Method Of Decomposing The Image Into Layers. ACM International Conference Proceeding Series, 23-27. https://doi: 10.1145/3502814.3502818

26. Kalandarov, P.I., Ikramov, G.I. (2023). Evaluation of the Efficiency of an Information and Measuring System for Monitoring the Temperature and Humidity of Grain Products. Measurement Techniques, 66(4), 237-243. https://doi.org/10.1007/s11018-023-02216-7

27. Kalandarov, P., Mukimov, Z., Tursunov, O., Kodirov, D., Erkinov, B. (2022). Study on dielcometric moisture control method based on capacitive transducers. AIP Conference Proceedings, 2686, 020016. https://doi.org/10.1063/5.0114591

Included in

Engineering Commons

Share

COinS
 
 

To view the content in your browser, please download Adobe Reader or, alternately,
you may Download the file to your hard drive.

NOTE: The latest versions of Adobe Reader do not support viewing PDF files within Firefox on Mac OS and if you are using a modern (Intel) Mac, there is no official plugin for viewing PDF files within the browser window.