中国安全科学学报 ›› 2026, Vol. 36 ›› Issue (8): 150-159.doi: 10.16265/j.cnki.issn1003-3033.2026.08.1212

• 安全技术与工程 • 上一篇    下一篇

乙烯爆炸诱发沉积低密度聚乙烯粉尘燃烧试验研究

龙慧敏1(), 吕鹏飞1,2,**(), 袁毓君1, 刘振东1   

  1. 1 北京石油化工学院 安全工程学院, 北京 102617
    2 北京市安全生产工程技术研究院, 北京 102617
  • 收稿日期:2026-03-10 修回日期:2026-05-20 出版日期:2026-08-28
  • 通信作者:
    **吕鹏飞(1986—),男,河南项城人,博士,教授,主要从事爆炸安全方面的研究。E-mail:
  • 作者简介:

    龙慧敏 (2000—),女,湖南郴州人,硕士研究生,主要研究方向为气体/粉尘燃烧爆炸与防治。E-mail:

Experimental study on combustion of deposited low-density polyethylene dust induced by ethylene explosion

Long Huimin1(), Lyu Pengfei1,2,**(), Yuan Yujun1, Liu Zhendong1   

  1. 1 School of Safety Engineering, Beijing Institute of Petrochemical Technology, Beijing 102617, China
    2 Beijing Academy of Safety Engineering and Technology, Beijing 102617, China
  • Received:2026-03-10 Revised:2026-05-20 Published:2026-08-28

摘要:

为揭示气体爆炸与沉积粉尘相互作用下的燃烧演化机制,借助自主研发的气体爆炸诱发沉积粉尘燃烧试验平台开展乙烯爆炸诱发沉积低密度聚乙烯(LDPE)粉尘发生燃烧试验;采集爆炸腔体内的压力、温度、火焰传播行为;系统分析乙烯的体积分数、沉积LDPE质量对爆炸的影响特征。结果表明:当乙烯的体积分数为3%~7%,LDPE质量为0、0.5、1、1.5、2、2.5 g时,爆炸压力时程曲线表现为先上升后下降,在相同LDPE质量条件下,随着乙烯体积分数增加到达峰值,压力时间整体呈减少趋势,在相同乙烯体积分数条件下,随着LDPE质量增加,爆炸峰值压力基本保持稳定,但随着乙烯体积分数增加,爆炸峰值压力显著增大。不同乙烯的体积分数、LDPE质量下,爆炸温度时程曲线均呈现先升后降的趋势,在相同LDPE质量条件下,随着乙烯体积分数的增加,到达爆炸峰值温度时间整体呈减少趋势,当乙烯体积分数从3%增加至4%~7%时,随着LDPE质量增加,爆炸峰值温度曲线变化趋势由先降后升2个阶段变为先降、后升、再降3个阶段。保持乙烯体积分数不变,当LDPE质量从0 增加至0.5、1、1.5、2、2.5 g时,随着燃烧反应进行,火焰颜色演变特征由蓝色—亮蓝色—黄色变为蓝色—亮蓝色—亮黄色—暗红色,当乙烯体积分数不变时,随着LDPE质量增加,燃烧火焰面积、连续性、燃烧反应持续时间均呈现先增后减的趋势。

关键词: 乙烯爆炸, 低密度聚乙烯(LDPE), 沉积粉尘, 燃烧试验, 爆炸压力, 爆炸温度, 爆炸火焰

Abstract:

In order to elucidate the combustion evolution mechanism under the interaction between gas explosions and deposited dust, combustion tests were conducted using an independently developed experimental platform for gas explosion-induced dust combustion. These experiments investigated the ignition of LDPE dust triggered by ethylene explosions, with data collected on pressure, temperature, and flame propagation behavior within the explosion chamber. A systematic analysis was performed to examine the effects of ethylene volume fraction and LDPE deposition mass on the explosion dynamics. The results demonstrate that explosion pressure-time curve exhibits a characteristic trend of initially increasing and then decreasing when ethylene concentration ranges from 3% to 7% and LDPE mass is 0, 0.5, 1, 1.5, 2, or 2.5 g. At the same LDPE dust mass, the time required to reach the peak pressure gradually decreases as the ethylene concentration increases. At the same ethylene concentration, the peak pressure of explosion remains relatively stable with increasing LDPE mass, whereas the peak explosion pressure increases significantly with increasing ethylene concentration. At different ethylene concentrations and LDPE dust masses, the temperature-time curves consistently exhibit an initial increase followed by a subsequent decrease. At a constant LDPE mass, the time required to reach the peak explosion temperature generally decreases as the ethylene concentration increases. When the ethylene concentration increases from 3% to the range of 4%-7%, the variation pattern of peak temperature with LDPE mass changes from a two-stage pattern of decreasing first and then increasing to a three-stage pattern of decreasing first, then increasing, and finally decreasing. At a constant ethylene concentration, the flame color changes from blue to bright blue and finally to yellow when LDPE mass is 0 g. As LDPE mass increases to 0.5, 1, 1.5, 2, and 2.5 g, the flame color transitions from blue to bright blue, then to bright yellow, and ultimately to dark red. At a constant ethylene concentration, the flame area, flame continuity, and combustion duration initially increase and then decrease as the LDPE mass increases.

Key words: ethylene explosion, low-density polyethylene(LDPE), deposited dust, combustion test, explosion pressure, explosion temperature, explosion flame

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