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Study on the thermal ignition of gasoline-air mixture in underground oil depots based on experiment and numerical simulation

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Abstract

The study on the special phenomenon, occurrence process and control mechanism of gasoline-air mixture thermal ignition in underground oil depots is of important academic and applied value for enriching scientific theories of explosion safety, developing protective technology against fire and decreasing the number of fire accidents. In this paper, the research on thermal ignition process of gasoline-air mixture in model underground oil depots tunnel has been carried out by using experiment and numerical simulation methods. The calculation result has been demonstrated by the experiment data. The five stages of thermal ignition course, which are slow oxidation stage, rapid oxidation stage, fire stage, flameout stage and quench stage, have been firstly defined and accurately descried. According to the magnitude order of concentration, the species have been divided into six categories, which lay the foundation for explosion-proof design based on the role of different species. The influence of space scale on thermal ignition in small-scale space has been found, and the mechanism for not easy to fire is that the wall reflection causes the reflux of fluids and changes the distribution of heat and mass, so that the progress of chemical reactions in the whole space are also changed. The novel mathematical model on the basis of unification chemical kinetics and thermodynamics established in this paper provides supplementary means for the analysis of process and mechanism of thermal ignition.

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Correspondence to Yihong Ou.

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Ou, Y., Du, Y., Jiang, X. et al. Study on the thermal ignition of gasoline-air mixture in underground oil depots based on experiment and numerical simulation. J. Therm. Sci. 19, 173–181 (2010). https://doi.org/10.1007/s11630-010-0173-7

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  • DOI: https://doi.org/10.1007/s11630-010-0173-7

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