Numerical Simulation of Magnesium Dust Dispersion and Explosion in 20 L Apparatus via an Euler–Lagrange Method

Author:

Fu Tao,Tsai Yun-TingORCID,Zhou QiangORCID

Abstract

Computational fluid dynamics (CFD) was used to investigate the explosion characteristics of a Mg/air mixture in a 20 L apparatus via an Euler–Lagrange method. Various fluid properties, namely pressure field, velocity field, turbulence intensity, and the degree of particle dispersion, were obtained and analyzed. The simulation results suggested that the best delayed ignition time was 60 ms after dust dispersion, which was consistent with the optimum delayed ignition time adopted by experimental apparatus. These results indicate that the simulated Mg particles were evenly diffused in the 20 L apparatus under the effect of the turbulence. The simulations also reveal that the pressure development in the explosion system can be divided into the pressure rising stage, the maximum pressure stage, and pressure attenuation stage. The relative error of the maximum explosion pressure between the simulation and the experiments is approximately 1.04%. The explosion model provides reliable and useful information for investigating Mg explosions.

Funder

the Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous)

Reference32 articles.

1. The survey of key technologies in hydrogen energy storage

2. Current status and future prospect of research on solid-state hydrogen storage material;Guo;New Chem. Mater.,2016

3. Current status and future prospects of research on hydrogen storage materials;Yang;J. Chin. Ceram. Soc.,2011

4. Effects of hydrogen and initial pressure on flame characteristics and explosion pressure of methane/hydrogen fuels

5. Hydrogen inhibition method for preventing hydrogen explosion accident in wet dust removal systems

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