Experimental study on flame behaviour characteristics induced by unequal double fires in a tunnel under different ventilation modes

IF 6.7 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Mingxuan Qiu , Yanfeng Li , Lin Xu , Shengzhong Zhao , Longyue Li , Hua Zhong
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Abstract

Unequal double fires may cause more serious disasters due to their complex interaction mechanisms, especially in the case of longitudinal ventilation. However, previous studies have paid little attention to this spot. Therefore, this study presents an experimental investigation into flame behaviour characteristics induced by unequal double fires in a tunnel under different ventilation modes. Using a reduced‐scale tunnel model based on Froude scaling, the effects of varying heat release rates (HRR), fire source separation distances (S), and longitudinal ventilation velocities (v) on flame merging, tilt angles, and mean flame lengths are systematically examined. These findings reveal that unequal HRR configurations yield lower merging probabilities compared to equal HRR scenarios under natural ventilation. Moreover, the flame merging probability exhibits a non‐monotonic relationship with ventilation velocity, and reaches a peak value at v = 0.2 m/s. Furthermore, the flame tilt behaviour and the role of its differences in flame merging are elucidated. Notably, the mean flame length of one fire is relatively insensitive to variations in the HRR of the adjacent fire, and the normalised mean flame length is independent of the merging state. Based on the detailed analysis, novel prediction models for flame tilt angles, incorporating the influence of pressure differential forces, and for normalised mean flame length are proposed. Although the experiments are limited to low ventilation velocities (v ≤ 0.5 m/s), the results provide practical insights for tunnel fire safety design. These results represent the first quantification of flame tilt angles and mean flame lengths under differential pressure forces in longitudinal ventilation, thereby bridging a critical gap in tunnel fire dynamics research.
不同通风方式下隧道不均匀双火火焰特性试验研究
不均匀二次火灾由于其相互作用机制复杂,尤其在纵向通风的情况下,可能会造成更严重的灾害。然而,以往的研究很少关注这一点。因此,本文对不同通风方式下隧道内不等双火引起的火焰行为特性进行了实验研究。利用基于弗劳德尺度的缩小尺度隧道模型,系统地研究了不同的热释放率(HRR)、火源分离距离(S)和纵向通风速度(v)对火焰合并、倾斜角和平均火焰长度的影响。这些发现表明,与自然通风条件下的等HRR情况相比,不均匀HRR配置产生更低的合并概率。火焰合并概率与通风速度呈非单调关系,并在v = 0.2 m/s时达到峰值。进一步阐明了火焰倾斜特性及其差异对火焰合并的影响。值得注意的是,一个火灾的平均火焰长度对相邻火灾的HRR变化相对不敏感,并且归一化的平均火焰长度与合并状态无关。在详细分析的基础上,提出了考虑压差力影响的火焰倾斜角预测模型和归一化平均火焰长度预测模型。虽然实验仅限于低通风速度(v≤0.5 m/s),但结果对隧道消防安全设计具有实际意义。这些结果首次量化了纵向通风中压差作用下的火焰倾斜角和平均火焰长度,从而弥补了隧道火灾动力学研究的一个关键空白。
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来源期刊
Tunnelling and Underground Space Technology
Tunnelling and Underground Space Technology 工程技术-工程:土木
CiteScore
11.90
自引率
18.80%
发文量
454
审稿时长
10.8 months
期刊介绍: Tunnelling and Underground Space Technology is an international journal which publishes authoritative articles encompassing the development of innovative uses of underground space and the results of high quality research into improved, more cost-effective techniques for the planning, geo-investigation, design, construction, operation and maintenance of underground and earth-sheltered structures. The journal provides an effective vehicle for the improved worldwide exchange of information on developments in underground technology - and the experience gained from its use - and is strongly committed to publishing papers on the interdisciplinary aspects of creating, planning, and regulating underground space.
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