Experimental Investigation and Theoretical Analysis of Flame Spread Dynamics over Discrete Thermally Thin Fuels with Various Inclination Angles and Gap Sizes
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Flame Spread Behavior Characterization
3.2. Characteristic Flame Lengths
3.3. Flame Spread Rate
4. Conclusions
- At lower angles, the flame front exhibited a smooth envelope with minimal fluctuations. However, at higher inclination angles, turbulent flame structures became increasingly apparent. Nevertheless, the burning intensity diminished, resulting in more stable flames, especially when the gap distance was sufficiently large, even at high inclination angles. In instances of smaller gap distances, flames leaped across the air gap. As the gap distance increased, flames propagated across the gap by relying on continuous heating from the preceding fuel flame, often accompanied by flame splitting.
- Both flame height and flame width exhibited an initial increase followed by a decrease with the increase in fuel coverage, reaching their peak values at specific points. Higher fuel coverage levels facilitated the entrainment of air and effective fuel mixing in the relatively small air gap, accelerating combustion and resulting in a larger flame size. Conversely, at low fuel coverage, larger air gaps hindered flame propagation due to the increasingly challenging ignition of the next sample, resulting in a smaller flame size.
- The flame spread rate demonstrated an initial increase followed by a decrease with the increase in fuel coverage, reaching a maximum value at fuel coverage rates between 0.93 and 0.571 for various inclination angles. We proposed a theoretical model to predict flame spread which effectively elucidates and predicts the interplay among flame spread rate, inclination angle, and fuel coverage. Furthermore, we delineated distinct regions within the map formed by inclination angle and fuel coverage, including the accelerated flame spread region, the flame spread weakening region, and the failed flame spread region.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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θ (°) | g (mm) | f | θ(°) | g (mm) | f |
---|---|---|---|---|---|
0 | 0 | 1 | 5 | 0 | 1 |
1 | 0.976 | 1 | 0.976 | ||
3 | 0.930 | 3 | 0.930 | ||
25 | 0 | 1 | 45 | 0 | 1 |
1 | 0.976 | 5 | 0.889 | ||
3 | 0.930 | 7 | 0.851 | ||
5 | 0.889 | 9 | 0.816 | ||
7 | 0.851 | 10 | 0.8 | ||
9 | 0.816 | 12 | 0.769 | ||
10 | 0.8 | 14 | 0.741 | ||
65 | 0 | 1 | 85 | 0 | 1 |
5 | 0.889 | 5 | 0.889 | ||
7 | 0.851 | 10 | 0.8 | ||
10 | 0.8 | 20 | 0.667 | ||
12 | 0.769 | 30 | 0.571 | ||
15 | 0.727 | 40 | 0.5 | ||
17 | 0.702 | 55 | 0.421 |
τ (m) | Tig (K) | cp (kJ/(kg·°C)) | ρ (kg·m−3) | θ (°) |
---|---|---|---|---|
0.274 × 10−3 | 456 | 2.0 | 0.6 × 103 | 0–85 |
θ (°) | f | xp (mm) | θ (°) | f | xp (mm) |
25 | 1 | 50.273 | 45 | 1 | 59.4 |
0.976 | 48.576 | 0.889 | 54.582 | ||
0.930 | 57.152 | 0.851 | 63.012 | ||
0.889 | 49.182 | 0.816 | 68.159 | ||
0.851 | 44.425 | 0.8 | 59.003 | ||
0.816 | 34.9 | 0.769 | 53.075 | ||
0.8 | 31.74 | 0.741 | 49.101 | ||
65 | 1 | 71.998 | 85 | 1 | 126.154 |
0.889 | 67.001 | 0.889 | 122.603 | ||
0.851 | 66.013 | 0.8 | 125.112 | ||
0.8 | 75.976 | 0.667 | 136.525 | ||
0.769 | 83.899 | 0.571 | 159.882 | ||
0.727 | 75.925 | 0.5 | 131.015 | ||
0.702 | 55.89 | 0.421 | 130.71 |
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Zhang, X.; Kuang, S.; Zhao, Y.; Zhang, J.; Luo, S. Experimental Investigation and Theoretical Analysis of Flame Spread Dynamics over Discrete Thermally Thin Fuels with Various Inclination Angles and Gap Sizes. Fire 2024, 7, 177. https://doi.org/10.3390/fire7060177
Zhang X, Kuang S, Zhao Y, Zhang J, Luo S. Experimental Investigation and Theoretical Analysis of Flame Spread Dynamics over Discrete Thermally Thin Fuels with Various Inclination Angles and Gap Sizes. Fire. 2024; 7(6):177. https://doi.org/10.3390/fire7060177
Chicago/Turabian StyleZhang, Xiaoliang, Shibing Kuang, Yanli Zhao, Jun Zhang, and Shengfeng Luo. 2024. "Experimental Investigation and Theoretical Analysis of Flame Spread Dynamics over Discrete Thermally Thin Fuels with Various Inclination Angles and Gap Sizes" Fire 7, no. 6: 177. https://doi.org/10.3390/fire7060177
APA StyleZhang, X., Kuang, S., Zhao, Y., Zhang, J., & Luo, S. (2024). Experimental Investigation and Theoretical Analysis of Flame Spread Dynamics over Discrete Thermally Thin Fuels with Various Inclination Angles and Gap Sizes. Fire, 7(6), 177. https://doi.org/10.3390/fire7060177