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A multiphase SPH framework for solving the evaporation and combustion process of droplets

Dudou Wang (Department of Power Engineering, Xi’an Hi-Tech Institute, Xi’an, China)
Hongfu Qiang (Department of Power Engineering, Xi’an Hi-Tech Institute, Xi’an, China)
Chao Shi (Department of Power Engineering, Xi’an Hi-Tech Institute, Xi’an, China)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 8 January 2020

Issue publication date: 2 March 2020

268

Abstract

Purpose

This paper aims to introduce a two-dimensional smoothed particle hydrodynamics (SPH) framework for simulating the evaporation and combustion process of fuel droplets.

Design/methodology/approach

To solve the gas–liquid two-phase flow problem, a multiphase SPH method capable of handling high density-ratio problems is established. Based on the Fourier heat conduction equation and Fick’s law of diffusion, the SPH discrete equations are derived. To effectively characterize the phase transition problem, inspired by volume of fluid method, the concept of liquid phase mass fraction of the SPH particles is proposed. The one-step global reaction model of n-hexane is used for the vapor combustion.

Findings

The evaporation and combustion process of single droplet conforms to the law. The framework works out well when the evaporation of multiple droplets involves coalescence process. Three different kinds of flames are observed in succession in the combustion process of a single droplet at different inflow velocity, which agree well with the results of the experiment.

Originality/value

To the best of the authors’ knowledge, this is the first computational framework that has the capability to simulate evaporation and combustion with SPH method. Based on the particle nature of SPH method, the framework has natural advantages in interface tracking.

Keywords

Citation

Wang, D., Qiang, H. and Shi, C. (2020), "A multiphase SPH framework for solving the evaporation and combustion process of droplets", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 30 No. 3, pp. 1547-1575. https://doi.org/10.1108/HFF-08-2019-0666

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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