Explosion suppression characteristics of modified ABC powder driven by argon/CO2

Hong Ji, Shijie Fan, Renjie Lu, Ke Yang, Juncheng Jiang, Zhixiang Xing

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

This paper changed ABC powder and performed a comparison on the suppression of methane explosions between pure modified powder under various operating circumstances and cold aerosols induced by various inert gases (argon, CO2). The results show that the maximum explosion pressure and flame velocity greatly decrease when inert gases act as catalytic gases. Different inert catalytic gases have various inhibitory effects on cold aerosols. Argon can delay the arrival of explosion overpressure. CO2 gas can produce bidirectional inhibitory effects from inerting and free radical chain reactions. It not only delays the occurrence of explosion overpressure, but also enhances explosion suppression ability. The most effective inhibitor is the cold aerosol, which contains 0.06 g/L of modified powder and 24% CO2 gas. Finally, under the influence of inert gases (argon, CO2), the modified ABC powder creates a cold aerosol that can more effectively suppress methane explosions.

Original languageEnglish
Article number119254
JournalPowder Technology
Volume433
DOIs
StatePublished - 15 Jan 2024
Externally publishedYes

Keywords

  • Carbon dioxide
  • Cold aerosol
  • Explosion pressure
  • Flame propagation
  • Methane explosion suppression
  • Modified ABC powder

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