4.7 Article

Multiscale simulation of atomization process and droplet particles diffusion of pressure-swirl nozzle

期刊

POWDER TECHNOLOGY
卷 379, 期 -, 页码 127-143

出版社

ELSEVIER
DOI: 10.1016/j.powtec.2020.10.053

关键词

Pressure-swirl nozzle; Spray; Atomization characteristics; Multiscale simulation; Dust reduction

资金

  1. National Key Research and Development Plan of China [2017YFC0805203]

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The study proposed a multiscale method to investigate the atomization characteristics of pressure-swirl nozzle for dust reduction, focusing on internal flow field, primary atomization, and secondary atomization. Large eddy simulation, volume of fluid model, and adaptive mesh refinement method were used to predict liquid core breakup and calculate secondary breakup of bigger droplets.
In order to investigate the atomization characteristics of the pressure-swirl nozzle for dust reduction, a multiscale method was proposed. The method distinguishes between internal flow field, primary atomization and secondary atomization. Based on the large eddy simulation (LES) model and the volume of fluid (VOF) model, the adaptive mesh refinement (AMR) method was introduced to predict the breakup of liquid core. Then the random generation method of the droplet with constant radius and the Kelvin-Helmholtz Rayleigh-Taylor (KH-RT) was used to calculate the secondary breakup of the bigger droplets. Besides, the radial and axial distribution laws of velocity, mean diameter and concentration of droplets was obtained under the spray pressure of 1-6 MPa. According to the crushing and collision-polymerization efficiency, the droplet field was divided into three phases. Based on phase-doppler anemometry (PDA), the relative error of the mean droplet diameter between simulation and experiments was less than 21.4%. (C) 2020 Elsevier B.V. All rights reserved.

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