4.7 Article

Preliminary study on extinguishing shielded fire with water mist

期刊

PROCESS SAFETY AND ENVIRONMENTAL PROTECTION
卷 141, 期 -, 页码 344-354

出版社

ELSEVIER
DOI: 10.1016/j.psep.2020.05.043

关键词

Water mist; Fire extinguishment; Shielded fire; Sand-burner fire; Fire Dynamics Simulator

资金

  1. National Natural Science Foundation of China [51874265]
  2. Key national RD program [2018YFC0809502]
  3. University Synergy Innovation Program of Anhui Province [GXXT-2019-027]
  4. Fundamental Research Funds for the Central Universities [WK2320000046]

向作者/读者索取更多资源

Fires in commercial and industrial areas, such as large warehouses containing goods on shelves, are inevitably shielded by nearby objects that act as obstacles, making such fires difficult to extinguish. Water mists, as an alternative to the halon fire-extinguishing agent, are capable of bypassing obstacles owing to the small size of the water particles. Therefore, by varying the distance between a plate obstacle and the nozzlefire source, half-scale experiments were performed under different working pressures to determine the critical condition of shielded sand-burner fire extinguishment. The flame temperature and radiant heat flux were measured using thermocouples and a radiometer. The interaction between a water mist spray and a shielded fire was visualized via laser light sheet illumination. The fire-extinguishing capability was analyzed based on the plate obstacle block ratio and the plume-spray thrust ratio. The results indicate that an empirical linear correlation can be adopted to predict the critical plume-spray thrust ratio required for fire extinguishment under different block ratios. In addition, Fire Dynamics Simulator was used to simulate the spray-plume interaction under the shielding conditions employed. The experimental and numerical results show a similar suppression tendency in cases with a low block ratio and fire size. This preliminary study may provide some raw data on shielded fire suppression with a water mist, in addition to serving as a reference for the optimal design of water mist systems. (C) 2020 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.

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