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About Efficiency of the Ultraviolet Diodes Applied for Disinfection of Water L&E, Vol.31, No.3, 2023

Light & Engineering 31 (3)

Volume 31
Date of publication 06/13/2023
Pages 21–27

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About Efficiency of the Ultraviolet Diodes Applied for Disinfection of Water L&E, Vol.31, No.3, 2023
Articles authors:
Sergey S. Kapitonov, Sergey A. Vishnevsky

Sergey S. Kapitonov, Ph. D. Tech. Sciences. In 2010, he graduated from N.P. Ogarev Mordovia State University. At present, he is the Director for Scientific and Technical Development NIIIS named after A.N. Lodygin and Associate Professor of the Department of Electronics and Nano-electronics of the Institute of Electronics and Lighting Engineering of N.P. Ogarev Mordovia State University. His research interests: photometry, UV radiation, research and development of LED light sources and control devices for them, development and research of low pressure discharge lamps

Sergey A. Vishnevsky radio-electronic engineer of the VNIIIS named after A.N. Lodygin and Director of “EKIS” LLC. He graduated from Penza State Technological University in 2013. The fields of scientific interests are development of the perspective semiconductor light sources and control systems for them

Abstract:
The article discusses the question of reasonable application of UV LEDs for disinfection of the fluid mediums. There are the main advantages and failures of modern UV LEDs as well as the perspectives for their development and application presented. The low energy efficiency is noted among the main failures that significantly limit the possibility to use the semiconductor devices. In order to evaluate the efficiency of energy, the thermal model of the radiation system based on UV LEDs has been created. This system provides the energy flow of radiation similar to the flow of the gas discharge lamp of DB75 type. The simulation of this system operation is performed with the passive and active cooling applied to UV emitting diodes. The active cooling system is implemented by the thermoelectric modules used. There is calculation of the thermal processes at various parameters of the active cooling system carried out. Optimal parameters of the cooling system have been determined, at which the most favourable thermal mode of operation of UV LEDs is provided. Due to the active cooling applied it was possible to reduce the weight and size indicators of the system by 12 %. And at the same time its energy consumption increased significantly, that allowed additionally to decrease the energy efficiency. Basing on the developed models of the irradiation system with passive and active cooling there was the calculation of its daily energy consumption performed in accordance with a generic schedule of the water consumption per hour for the household and drinking needs of citizens. The results of calculation showed that if to use even the passive cooling, the system consumes the several times more electricity per day compared to the DB75 gas discharge lamp. It confirms that there are currently significant restrictions on the use of UV LEDs for disinfection of liquid media due to their low energy efficiency. But it should be noted that the technology of UV LEDs production is progressing dynamically. This fact allows us to say with optimism about the possibility to apply the semiconductor devices in systems of disinfection in the future.
References:
1. Methodological Instructions 4.3.2030–05: Sanitary and biological control of the effectiveness of disinfection of drinking and waste water by UV irradiation / Moscow: Federal Centre for Hygiene and Epidemiology of ROSPOTREBNADZOR (Federal Service for Surveillance on Consumer Rights Protection and Human Wellbeing), 2006, 20 p.
2. Methodological Instructions 2.1.4.719–98: The drinking water and water supply of human settlements. Sanitary monitoring of the ultraviolet radiation applied in the technology of drinking water preparation / Moscow, Federal Centre for Hygiene and Epidemiology of ROSPOTREBNADZOR, 1998, 20 p.
3. Reference book: Light and Engineering [Svetotekhnika] / Edited by Ju.B. Aizenberg, G.V. Boos, the 4th Edition, Moscow, 2019, 892 p.
4. SET OF RULES31.13330.2012: The water supply. The outdoor networks and structures / APPROVED by the order of the Ministry of Regional Development of the Russian Federation, dated December 29, 2011 N635/14 and put into effect on January 01, 2013.
5. Kedrov V. S., Isarv V.N., Orlov V.А. and others. Water supply and sanitation [Vodosnabzheniye i vodootvedeniye] / Мoscow: Stroyizdat, 2002, 336 p.
6. ANSI/IES RP‑44–21 Recommended practice: Ultraviolet germicidal irradiation (UVGI) / ANSI, American National standard.
7. Petropavlovsky Y. The powerful UV LEDs of Led Egin company [Moshchnyye ul’tra fioletovyye diody kompanii Led Egin] // The semiconductor lighting technology [Poluprovodnikovaya svetotekhnika], 2013, V. 5, # 25, pp. 34–38.
8. Volkov V. The semiconductor radiators of UV spectrum and sphere of their applications [Poluprovodnikovyye izluchateli UF oblasti spektra i ikh primenenie] // The semiconductor lighting technology [Poluprovodnikovaya svetotekhnika], 2014, # 1, pp. 62–65.
9. URL: https://www.lasercomponents.com/de/?embedded=1&file=fileadmin/user_upload/ home/Datasheets/bolb/smd6060-uvc-led-high-power.pdf&no_cache=1 (date of application: 26.009.2022).
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