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An Autonomous Mobile Combination Disinfection System

Overview
Journal Sensors (Basel)
Publisher MDPI
Specialty Biotechnology
Date 2024 Jan 11
PMID 38202915
Authors
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Abstract

To address the common drawbacks of current disinfection robots, which include the potential for secondary environmental pollution, disinfection dead corners, and low efficiency, in this paper, an autonomous mobile combination disinfection system is proposed. The system utilizes ultraviolet (UV) radiation and a low-concentration hydrogen peroxide aerosol to kill pathogens. It comprises three parts: a human-computer interface, a mobile robot, and disinfection equipment. A disinfection process model with continuous and fixed-point modes was established, and the effective disinfection range, speed, and duration were quantitatively calculated. The developed prototype was tested on-site by a professional third-party testing agency. The experimental results demonstrated that the combination disinfection robot achieved a 92.95% disinfection rate of natural airborne bacteria in a room measuring 22 square meters with a height of 2.8 m in just 30 min. The disinfection efficiency is at least 25% higher compared to standalone UV lamp disinfection and also exhibits a noticeable improvement over standalone hydrogen peroxide aerosol disinfection. The system enables the environmentally friendly, rapid, efficient, and all-encompassing disinfection of natural airborne bacteria. Finally, various disinfection solutions and recommendations for different application scenarios and requirements are provided.

Citing Articles

Ultraviolet C Decontamination Devices in a Hospital Pharmacy: An Evaluation of Their Contribution.

Baudart C, Briot T Pharmacy (Basel). 2025; 13(1).

PMID: 39998007 PMC: 11859781. DOI: 10.3390/pharmacy13010009.

References
1.
Biasin M, Bianco A, Pareschi G, Cavalleri A, Cavatorta C, Fenizia C . UV-C irradiation is highly effective in inactivating SARS-CoV-2 replication. Sci Rep. 2021; 11(1):6260. PMC: 7973506. DOI: 10.1038/s41598-021-85425-w. View

2.
Andersen B, Banrud H, Boe E, Bjordal O, Drangsholt F . Comparison of UV C light and chemicals for disinfection of surfaces in hospital isolation units. Infect Control Hosp Epidemiol. 2006; 27(7):729-34. DOI: 10.1086/503643. View

3.
Hong H, Shin W, Oh J, Lee S, Kim T, Lee W . Standard for the Quantification of a Sterilization Effect Using an Artificial Intelligence Disinfection Robot. Sensors (Basel). 2021; 21(23). PMC: 8659791. DOI: 10.3390/s21237776. View

4.
Beggs C, Kerr K, Donnelly J, Sleigh P, Mara D, Cairns G . The resurgence of tuberculosis in the tropics. An engineering approach to the control of Mycobacterium tuberculosis and other airborne pathogens: a UK hospital based pilot study. Trans R Soc Trop Med Hyg. 2000; 94(2):141-6. DOI: 10.1016/s0035-9203(00)90250-5. View

5.
Hockberger P . A history of ultraviolet photobiology for humans, animals and microorganisms. Photochem Photobiol. 2003; 76(6):561-79. DOI: 10.1562/0031-8655(2002)0760561AHOUPF2.0.CO2. View