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Aerosol emission and superemission during human speech increase with voice loudness

Scientific Reports · 2019 · Vol. 9(1) · pp. 2348–2348
Sima AsadiAnthony S. WexlerChristopher D. CappaSantiago BarredaNicole M. BouvierWilliam D. Ristenpart

Abstract

Mechanistic hypotheses about airborne infectious disease transmission have traditionally emphasized the role of coughing and sneezing, which are dramatic expiratory events that yield both easily visible droplets and large quantities of particles too small to see by eye. Nonetheless, it has long been known that normal speech also yields large quantities of particles that are too small to see by eye, but are large enough to carry a variety of communicable respiratory pathogens. Here we show that the rate of particle emission during normal human speech is positively correlated with the loudness (amplitude) of vocalization, ranging from approximately 1 to 50 particles per second (0.06 to 3 particles per cm<sup>3</sup>) for low to high amplitudes, regardless of the language spoken (English, Spanish, Mandarin, or Arabic). Furthermore, a small fraction of individuals behaves as "speech superemitters," consistently releasing an order of magnitude more particles than their peers. Our data demonstrate that the phenomenon of speech superemission cannot be fully explained either by the phonic structures or the amplitude of the speech. These results suggest that other unknown physiological factors, varying dramatically among individuals, could affect the probability of respiratory infectious disease transmission, and also help explain the existence of superspreaders who are disproportionately responsible for outbreaks of airborne infectious disease.

Infection Control and VentilationCOVID-19 epidemiological studiesRespiratory viral infections researchAudiologyLoudnessAerosolPhonationAmplitudeSpeech recognitionPsychologyAcousticsPhysicsComputer science

MeSH terms

AdultAerosolsCoughFemaleHumansLoudness PerceptionMaleParticle SizeSneezingSpeechDisease Transmission, InfectiousExhalation

Funding

  • Division of Intramural Research, National Institute of Allergy and Infectious Diseases
  • National Institutes of Health
  • University of California, Davis
  • National Institute of Allergy and Infectious Diseases
  • National Institute of Environmental Health Sciences
Citations
983
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131.66
field-weighted impact
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61
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100%
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Cited by
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References
Influenza virus assembly and budding
Virology · 2011 · 640 citations
Review of Aerosol Transmission of Influenza A Virus
Emerging infectious diseases · 2006 · 816 citations
On coughing and airborne droplet transmission to humans
Physics of Fluids · 2020 · 575 citations
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