Comparative experimental study on inhibition of methane explosion by ultra-fine water mist containing different additives

IF 3.6 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Zeyu Zhang, Ke Yang, Xiaoyang Du, Dongyu Ji, Hong Ji, Juncheng Jiang
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引用次数: 0

Abstract

This study utilized a 2.5L visual pipeline experiment platform to investigate the inhibitory effect of ultra-fine water mist containing different additives on methane explosion. It provides a more comprehensive experimental foundation for the subsequent research on methane explosion suppression. The experiment analyzed the particle size parameters of ultra-fine water mist and the effect of different additives on the inhibition of pipeline methane explosion. The results showed that the explosion overpressure of ultra-fine water mist containing KBr, FeCl2, and PPFBS was significantly lower than that of pure methane and pure water ultra-fine water mist with the same amount of spray. The best inhibition effect was observed with 5% KBr, 0.82% FeCl2, and 0.07% PPFBS. Compared to 5 mL pure water mist, the explosion overpressure decreased by 19.49%, 16.87%, and 46.3%, and the flame propagation speed decreased by 18.7%, 15.55%, and 41.65%, respectively. It is proved that the listed additives have different degrees of inhibiting effects on methane explosion. The composite additive ultra-fine water mist had a greater effect on temperature and reacted with a large number of free radicals such as H and O, which hindered the chain reaction in the process of methane combustion most obviously. The four additives have the best explosion suppression effect: compound additive, PPFBS, KBr, and FeCL2. The main mechanism of the effect of different inorganic salt additives is that the ultra-fine water mist cools the reaction zone's temperature, and affects the gas's volume ratio after dilution and vaporization, and some evaporated crystals also play the role of attenuating heat radiation.
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来源期刊
CiteScore
7.20
自引率
14.30%
发文量
226
审稿时长
52 days
期刊介绍: The broad scope of the journal is process safety. Process safety is defined as the prevention and mitigation of process-related injuries and damage arising from process incidents involving fire, explosion and toxic release. Such undesired events occur in the process industries during the use, storage, manufacture, handling, and transportation of highly hazardous chemicals.
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