The effect of environmental conditions on spreading of droplet-laden mist pulsed turbulent jet

This paper presents the results of numerical simulation of the formation and motion of a single pulsed turbulent gas-droplet jet, roughly corresponding to the conditions of a human cough. Predictions of the averaged local turbulent flow structure and droplets distributions are made using the axisymmetric 3D URANS approach and the second-moment closure turbulence model. The simulations were performed for duration of a single cough pulse t = 0.6 s and a maximum gas phase velocity of 20 m/s, with the initial mass fraction of droplets M L 1 = 1–5% and droplet diameter D 1 = 10–100 μm. The highest level of the longitudinal component of the averaged velocity and kinetic energy of turbulence is achieved during the pulse blowing period. Thereafter, a monotonic decrease in velocity and turbulence occurs. The vortex cloud persists for a relatively long time (minimum t ≥ 4 s) and during this time it spreads in the surrounding flooded space to a distance of more than 3 m before the liquid droplets evaporate completely. Maximum expansion of the pulsed two-phase round jet reaches nine-hole diameters. The maximum longitudinal velocity and the kinetic energy of turbulence are reached during the initial phase of the cloud motion at the stage of the jet outflow.

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Publication Details

Journal
International Journal of Heat and Fluid Flow
Published
2026-09-12
DOI
https://doi.org/10.1016/j.ijheatfluidflow.2026.110657
Primary Topic
Particle Dynamics in Fluid Flows
Type
article
Field-Weighted Citation Impact
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article

The effect of environmental conditions on spreading of droplet-laden mist pulsed turbulent jet

М. А. Пахомов, V.I. Terekhov
International Journal of Heat and Fluid Flow
Particle Dynamics in Fluid Flows
article

The effect of environmental conditions on spreading of droplet-laden mist pulsed turbulent jet

М. А. Пахомов, V.I. Terekhov
article en

Abstract

This paper presents the results of numerical simulation of the formation and motion of a single pulsed turbulent gas-droplet jet, roughly corresponding to the conditions of a human cough. Predictions of the averaged local turbulent flow structure and droplets distributions are made using the axisymmetric 3D URANS approach and the second-moment closure turbulence model. The simulations were performed for duration of a single cough pulse t = 0.6 s and a maximum gas phase velocity of 20 m/s, with the initial mass fraction of droplets M L 1 = 1–5% and droplet diameter D 1 = 10–100 μm. The highest level of the longitudinal component of the averaged velocity and kinetic energy of turbulence is achieved during the pulse blowing period. Thereafter, a monotonic decrease in velocity and turbulence occurs. The vortex cloud persists for a relatively long time (minimum t ≥ 4 s) and during this time it spreads in the surrounding flooded space to a distance of more than 3 m before the liquid droplets evaporate completely. Maximum expansion of the pulsed two-phase round jet reaches nine-hole diameters. The maximum longitudinal velocity and the kinetic energy of turbulence are reached during the initial phase of the cloud motion at the stage of the jet outflow.

International Journal of Heat and Fluid FlowVol. 122
Institute of Thermophysics (RU)
Ministry of Education and Science of the Russian Federation
Climate action
Openalex Percentile: Top 14%
Particle Dynamics in Fluid Flows
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The effect of environmental conditions on spreading of droplet-laden mist pulsed turbulent jet — М. А. Пахомов, V.I. Terekhov · International Journal of Heat and Fluid Flow (2026) | TGRS Research Map | TGRS