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Activating Molecules, Ions, and Solid Particles with Acoustic Cavitation
Published on: April 11, 2014
Effect of H2O2 Antiseptic on Dispersal of Cavitation-Induced Microdroplets
T Roy1, G Damoulakis1, J Komperda1
1Department of Mechanical and Industrial Engineering, University of Illinois at Chicago, Chicago, IL, USA.
Abstract:
The persisting outbreak of SARS-CoV-2 has posed an enormous threat to global health. The sustained human-to-human transmission of SARS-CoV-2 via respiratory droplets makes the medical procedures around the perioral area vulnerable to the spread of the disease. Such procedures include the ultrasonic dental cleaning method, which occurs within the oral cavity and involves cavitation-induced sprays, thus increasing the risk of pathogen transmission via advection. To understand the associated health and safety risks for patients and clinicians, it is critical to understand the flow pattern of the spray cloud around the operating region, the size and velocity distribution of the emitted droplets, and the extent of fluid dispersion until ultimate deposit on surfaces or escape through air vents. In this work, the droplet size and velocity distributions of the spray emerging from the tip of a free-standing common ultrasonic dental cleaning device were characterized via high-speed imaging. Deionized water and 1.5% and 3% aqueous hydrogen peroxide (H2O2) solutions were used as working fluids, with the H2O2-an established oxidizing agent-intended to curb the survival of virus released in aerosols generated from dental procedures. The measurements reveal that the presence of H2O2 in the working fluid increases the mean droplet size and ejection velocity. Detailed computational fluid dynamic simulations with multiphase flow models reveal benefits of adding small amounts of H2O2 in the feed stream of the ultrasonic cleaner; this practice causes larger droplets with shorter residence times inside the clinic before settling down or escaping through air vents. The results suggest optimal benefits (in terms of fluid spread) of adding 1.5% H2O2 in the feed stream during dental procedures involving ultrasonic tools. The present findings are not specific to the COVID-19 pandemic but should also apply to future outbreaks caused by airborne droplet transmission.
Insights
Adding hydrogen peroxide to ultrasonic dental cleaning fluids produces larger droplets, reducing aerosol spread and enhancing safety for patients and clinicians during procedures. This finding aids in preventing pathogen transmission.
Area of Science:
- Aerosol science
- Fluid dynamics
- Biomedical engineering
Background:
- The COVID-19 pandemic highlighted risks of SARS-CoV-2 transmission via respiratory droplets during dental procedures.
- Ultrasonic dental cleaning generates aerosols, increasing pathogen transmission risk through airborne droplets.
Purpose of the Study:
- To characterize the spray from ultrasonic dental cleaners.
- To evaluate the effect of hydrogen peroxide (H2O2) on droplet size and velocity.
- To assess H2O2's potential to mitigate aerosol spread in dental settings.
Main Methods:
- High-speed imaging to measure droplet size and velocity distributions.
- Computational fluid dynamics (CFD) simulations with multiphase flow models.
- Experiments using deionized water and 1.5% and 3% aqueous H2O2 solutions.
Main Results:
- Hydrogen peroxide (H2O2) in the working fluid increased mean droplet size and ejection velocity.
- CFD simulations showed H2O2 addition leads to larger droplets with shorter residence times.
- 1.5% H2O2 demonstrated optimal benefits in reducing fluid spread.
Conclusions:
- Adding 1.5% H2O2 to ultrasonic dental cleaner fluids can reduce aerosol dispersion.
- This strategy enhances safety for patients and clinicians by minimizing airborne pathogen transmission.
- Findings are relevant for managing future outbreaks involving airborne droplet transmission.
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