大连海事大学学报 >
2025 , Vol. 51 >Issue 3: 31 - 43
DOI: https://doi.org/10.16411/j.cnki.issn1006-7736.2025.03.004
火灾条件下船舶人员疏散实验与仿真
网络出版日期: 2025-03-14
基金资助
国家重点研发计划(2022YFB4301400)
Experimental and simulation study on evacuation of ship personnel under fire conditions
Online published: 2025-03-14
潘栋, 张彬, 张高彬, 童家鹏 . 火灾条件下船舶人员疏散实验与仿真[J]. 大连海事大学学报, 2025 , 51(3) : 31 -43 . DOI: 10.16411/j.cnki.issn1006-7736.2025.03.004
To address the difficulty in quantifying the impact of ship fires and motion on personnel evacuation,based on platform and real ship experiments of the influence of smoke layer thickness and ship shaking on personnel evacuation, combined with Anylogic simulation software, a personnel evacuation model considering fire products and shaking effects in ship fire scenarios was constructed. Experimental results show that the platform-based evacuation speed experiments established a relationship between factors like smoke layer thickness and ship shaking conditions and their effects on evacuation speed, with the coupled influence coefficient being the product of their individual coefficients. The three sets of personnel evacuation experiments conducted on the training ship under different smoke layer thicknesses yielded evacuation completion times of 82 s, 78 s, and 85 s, respectively. Compared with the experimental results, the numerical simulations for the corresponding conditions show average error rates of 7.6%, 7.2%, and 7.1%. Numerical simulations show that in a fire scenario without considering fire products, 47 injuries and 6 fatalities might occur, whereas incorporating fire products increased evacuation time by 32.3 s but resulted in zero casualties. When considering roll and pitch motions during a fire, the evacuation times differed by 10.5 s and 33.2 s, respectively, compared to scenarios only accounting for fire products, indicating that pitch motion has a more significant impact on evacuation. This research provides theoretical guidance for personnel evacuation and route selection under ship fire conditions.
Key words: ship fires; ship motion; personnel evacuation; experiment and simulation
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