Mechanisms of atomization from rotary dental instruments and its mitigation
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Published version
Author(s)
Type
Journal Article
Abstract
Since the onset of coronavirus disease 2019, the potential risk of dental procedural generated spray emissions (including aerosols and splatters), for severe acute respiratory syndrome coronavirus 2 transmission, has challenged care providers and policy makers alike. New studies have described the production and dissemination of sprays during simulated dental procedures, but findings lack generalizability beyond their measurements setting. This study aims to describe the fundamental mechanisms associated with spray production from rotary dental instrumentation with particular focus on what are currently considered high-risk components-namely, the production of small droplets that may remain suspended in the room environment for extended periods and the dispersal of high-velocity droplets resulting in formites at distant surfaces. Procedural sprays were parametrically studied with variables including rotation speed, burr-to-tooth contact, and coolant premisting modified and visualized using high-speed imaging and broadband or monochromatic laser light-sheet illumination. Droplet velocities were estimated and probability density maps for all laser illuminated sprays generated. The impact of varying the coolant parameters on heating during instrumentation was considered. Complex structured sprays were produced by water-cooled rotary instruments, which, in the worst case of an air turbine, included droplet projection speeds in excess of 12 m/s and the formation of millions of small droplets that may remain suspended. Elimination of premisting (mixing of coolant water and air prior to burr contact) resulted in a significant reduction in small droplets, but radial atomization may still occur and is modified by burr-to-tooth contact. Spatial probability distribution mapping identified a threshold for rotation speeds for radial atomization between 80,000 and 100,000 rpm. In this operatory mode, cutting efficiency is reduced but sufficient coolant effectiveness appears to be maintained. Multiple mechanisms for atomization of fluids from rotatory instrumentation exist, but parameters can be controlled to modify key spray characteristics during the current crisis.
Date Issued
2021-03-01
Date Acceptance
2020-11-17
Citation
Journal of Dental Research, 2021, 100 (3), pp.261-267
ISSN
0022-0345
Publisher
SAGE Publications
Start Page
261
End Page
267
Journal / Book Title
Journal of Dental Research
Volume
100
Issue
3
Copyright Statement
© International & American Associations for Dental Research 2020. This article is distributed under the terms of the Creative Commons Attribution 4.0 License (https://creativecommons.org/licenses/by/4.0/) which permits any use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access page (https://us.sagepub.com/en-us/nam/open-access-at-sage).
License URL
Sponsor
Guys & St Thomas NHS Foundation Trust
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/33327823
Grant Number
PO 5753638
Subjects
SARS-CoV-2
aerosol
aerosol-generating procedure
dental drill
imaging
infection control
Publication Status
Published
Coverage Spatial
United States
Article Number
ARTN 22034520979644
Date Publish Online
2020-12-16