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Experimental study on the combustion behaviors of continuous methanol spill fires on the vertical plane

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  • Tong, Weixin
  • Ji, Jie
  • Wang, Chen
  • Li, Chunxiao
  • Zhu, Jiping

Abstract

The development of coal-based fuels is the best way to supplement the petroleum shortage. During the storage and transportation of coal-based fuels, fuel leakage often forms spill fires, posing a serious threat to energy utilization. A series of spill fire experiments were conducted on a vertical plate to improve the understanding of the combustion behavior of spill fires. Methanol was used as the fuel and the leakage rate was 0.32 mL/s∼3.07 mL/s. When the fuel leakage rate is small (≤2.17 mL/s), the fuel burning area gradually shrinks until it reaches a stable value. While the fuel leakage rate is large (≥2.46 mL/s), the flame keeps covering the whole plane below the leakage outlet and the burning area does not shrink. Gravity-dominated diffusion combustion on the vertical plane will result in a thinner fuel thickness, with a calculated average methanol thickness of 0.11 times that of the fuel burning on the horizontal plane. A heat transfer equilibrium model of the steady-state combustion process is further performed, which show that the combustion process of methanol in these cases is dominated by convective heat transfer, accounting for about 90 % of the total heat feedback.

Suggested Citation

  • Tong, Weixin & Ji, Jie & Wang, Chen & Li, Chunxiao & Zhu, Jiping, 2023. "Experimental study on the combustion behaviors of continuous methanol spill fires on the vertical plane," Energy, Elsevier, vol. 285(C).
  • Handle: RePEc:eee:energy:v:285:y:2023:i:c:s0360544223028694
    DOI: 10.1016/j.energy.2023.129475
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    References listed on IDEAS

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    1. Wang, Chen & Ji, Jie, 2023. "Experimental study of dynamic combustion behavior and heat transfer of heptane pool fire with burning time under thin fuel thickness (2.0 mm–14.0 mm)," Energy, Elsevier, vol. 270(C).
    2. Lin, Wensheng & Zhang, Na & Gu, Anzhong, 2010. "LNG (liquefied natural gas): A necessary part in China's future energy infrastructure," Energy, Elsevier, vol. 35(11), pages 4383-4391.
    3. Yu, Longxing & Wan, Huaxian & Gao, Zihe & Ji, Jie, 2021. "Study on flame merging behavior and air entrainment restriction of multiple fires," Energy, Elsevier, vol. 218(C).
    4. Li, Manhou & Han, Guangzhao & Geng, Shuwei, 2022. "Experimental study and new-proposed mathematical correlation of flame height of rectangular pool fire with aspect ratio and mass burning rate," Energy, Elsevier, vol. 255(C).
    5. Luo, Sai & Xu, JingBo & Wang, Chen & Ji, Jie, 2023. "Experimental study of flame spread behavior and heat transfer mechanism over n-butanol fuel in trays of different widths," Energy, Elsevier, vol. 282(C).
    6. Wang, Chen & Hu, Haowei & Zhang, Hao & Ji, Jie & Wang, Zhigang, 2022. "Experimental study of the horizontal subsurface flow trajectory and dynamic external radiation of flame spread over diesel," Energy, Elsevier, vol. 260(C).
    Full references (including those not matched with items on IDEAS)

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