DEVELOPMENT OF PHOTOCATALYTIC AND ULTRASONIC EQUIPMENT TO PREVENT THE SPREAD OF CORONAVIRUS SARS-COV-2. EXPERIMENTAL SAMPLE OF SEPARATION STAGES

Автор(и)

DOI:

https://doi.org/10.32347/2412-9933.2021.47.167-173

Ключові слова:

aerosol gradient technologies, separation equipment, gradient field, resource and environmental safety

Анотація

The aim of the work is to develop experimental sample of separation elements for photocatalytic and ultrasonic equipment for air purification for infectious safety of buildings from coronavirus SARS-COV-2. During the research and development work on creation of Experimental sample of air filter of separation stages for photocatalytic and ultrasonic equipment for air purification for infectious safety of buildings from coronavirus SARS-COV-2 using turboimpact separation technologies, a working 3 dimensional model of geometry was created. 3D printing technologies were used to create Plastic model of experimental Sample. 3D model for 3D printer was created. The Full-scale metal experimental sample of Air Filter for air purification and oil and dust separation consists of 3 equal Purification modules. Each of the modules consists of 3 stages for experiments and increasing of purification level. The equipment is designed for air volume G = 50… 150 m3/hour, should reduce the degree of microbial contamination of the air to the required level (capture particles of 0.1 μm) and help reduce the risk of airborne diseases. Project considers solving an important scientific and technical problem of creating and development of photocatalytic and ultrasonic heat and mass transfer separation equipment for air clean from dust and viruses (coronavirus SARS-COV-2).

Біографії авторів

Chun Xiang Huang , Yancheng Polytechnic College, Institute of Intelligent Manufacturing, Yancheng, China

Lecturer

Xia Liling , Yancheng Polytechnic College, Institute of information and security, Yancheng, China

Lecturer

Sergiy Ryzhkov , Yancheng Polytechnic College, International Academy of Marine Science, Technology and Innovation, Yancheng, China

DSc (Eng.), professor

Посилання

Kalvert, S., Inglund, G. M., (1988). Atmosphere protection from industrial pollution: reference book, part 1. Moscow, Metallurgiya Publ., 760.

Kalvert, S., Inglund, G. M., (1988). Atmosphere protection from industrial pollution: reference book, part 2. Moscow, Metallurgiya Publ., 770.

Sazhin, T. M., Krechun, K. N., Botez, N., (2003). NOx and SO2 retention out of flue gases in electric fields. Industrial heat engineering. International applied scientific journal, 4, 193–196.

Straus, V., (1981). Industrial gas cleaning. Moscow, Khimiya Publ., 583.

Hall, D. E., King, D. B., Morgan, T. B., (1998). A review of recent literature investigating of the measurement of automotive particulate; the relationship with environment aerosol, air quality and health effect. Ibid, 982602, 53–65.

Ryzhkov, S. S., (2001). Ship complex installation of clearing oil mixture of water. Proceedings of the third international conference on marine industry. Varna, 2, pp. 285–288.

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Опубліковано

2021-09-27

Як цитувати

Huang , C. X. ., Liling , X., & Ryzhkov , S. (2021). DEVELOPMENT OF PHOTOCATALYTIC AND ULTRASONIC EQUIPMENT TO PREVENT THE SPREAD OF CORONAVIRUS SARS-COV-2. EXPERIMENTAL SAMPLE OF SEPARATION STAGES. Управління розвитком складних систем, (47), 167–173. https://doi.org/10.32347/2412-9933.2021.47.167-173

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Розділ

УПРАВЛІННЯ ТЕХНОЛОГІЧНИМИ ПРОЦЕСАМИ