Study on flame propagation characteristics of deposited coal dust explosion induced by pressure waves of different intensities

IF 2 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Fire and Materials Pub Date : 2023-05-02 DOI:10.1002/fam.3148
Zhenhai Hou, Deming Wang, Shengyun Luo, Qiu Zhong, Yansen Lu, Wei Zhang, Yunfei Zhu, Shun Wu
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Abstract

In the hope of studying the laws of secondary explosion induced by gas explosion shock waves lifting deposited coal dust (CD) in coal mines, the paper discusses the explosion overpressure, composite flame propagation characteristics and the acceleration mechanism of composite flame with the aid of a self-built gas explosion experiment pipeline. The experimental results demonstrate that under the methane concentrations of 7.5%, 9.5% and 11.5%, the explosion time-overpressure curves present same variation trend at different measuring points. Specifically, they all surge first, then decrease to a negative value and increase in oscillations, ultimately stabilizing at around 0 MPa. The presence of deposited CD in the reaction has an insignificant impact on the explosion overpressure at the measuring points, and the maximum overpressures all appear near the P2 (0.75 m away from the ignition source) measuring point. However, the deposited CD exerts a considerable influence on the flame's instantaneous velocity, especially on the flame structure during flame propagation. In stark contrast, when the methane concentration is 7.5%, the single flame has a larger instantaneous velocity than the composite flame and it exhibits finger flame, flat flame and tulip flame successively. Compared with the blue flame produced by pure methane combustion, the composite flame shows a bright white light strip that is distributed along the pipeline axis, accompanied by more obvious stratified combustion. The high-pressure wave intensity and the flame front temperature jointly promote the overall turbulence intensity in the area where CD is swept up, resulting in continuous acceleration of the composite flame.

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不同强度压力波诱发沉积煤尘爆炸火焰传播特性研究
为了研究煤矿瓦斯爆炸冲击波抬升煤尘(CD)引起二次爆炸的规律,本文借助自建的瓦斯爆炸实验管道,对爆炸超压、复合火焰的传播特性和复合火焰的加速机理进行了探讨。实验结果表明,在甲烷浓度为7.5%、9.5%和11.5%时,不同测点的爆炸时间-超压曲线呈现相同的变化趋势。具体来说,它们都是先浪涌,然后减小到负值,振荡增加,最终稳定在0 MPa左右。反应中沉积CD的存在对测点处的爆炸超压影响不显著,最大超压均出现在P2测点附近(距离火源0.75 m)。然而,沉积的CD对火焰的瞬时速度,特别是火焰传播过程中的火焰结构有相当大的影响。与之形成鲜明对比的是,当甲烷浓度为7.5%时,单火焰的瞬时速度大于复合火焰,并依次表现为手指火焰、扁平火焰和郁金香火焰。与纯甲烷燃烧产生的蓝色火焰相比,复合火焰呈现明亮的白光条,沿管道轴线分布,分层燃烧更为明显。高压波强度和火焰锋面温度共同促进CD被扫入区域的整体湍流强度,导致复合火焰持续加速。
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来源期刊
Fire and Materials
Fire and Materials 工程技术-材料科学:综合
CiteScore
4.60
自引率
5.30%
发文量
72
审稿时长
3 months
期刊介绍: Fire and Materials is an international journal for scientific and technological communications directed at the fire properties of materials and the products into which they are made. This covers all aspects of the polymer field and the end uses where polymers find application; the important developments in the fields of natural products - wood and cellulosics; non-polymeric materials - metals and ceramics; as well as the chemistry and industrial applications of fire retardant chemicals. Contributions will be particularly welcomed on heat release; properties of combustion products - smoke opacity, toxicity and corrosivity; modelling and testing.
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Issue Information Issue Information Analyzing thermal-moisture comfort and thermal protective performance of phase change materials dripped protective clothing Effect of silane coupling agent on mechanical properties, flame retardancy, and ceramifiable behavior of ceramifiable flame-retardant silicone rubber composite Enhancing fire safety and thermal performance: Wood composites with bio-based phase change materials and fire retardants for building applications
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