A model for visual evacuation of people considering the effects of gravity

被引:0
作者
Yuan W. [1 ]
Deng Y. [2 ]
机构
[1] School of Safety Engineering, Shenyang Aerospace University, Shenyang
[2] Party School of the Central Committee of C.P.C., National Academy of Governance, Beijing
关键词
pedestrian evacuation; Stair angle; stair width; view;
D O I
10.3233/JIFS-236008
中图分类号
学科分类号
摘要
This paper improves the visual change-based personnel evacuation model by considering the evacuees’ gravity. Specifically, first, the new model incorporates the gravity formula in the model’s mechanic part to consider the influence of gravity. Second, the new model involves rules for determining the visual range of personnel moving in the stairwell. Third, the proposed model investigates the influence of the angle and width of the stairwell, the number of people, and other factors during personnel evacuation under the influence of gravity. The model is developed in Python and is compared with actual results, revealing that the proposed model is more realistic considering the evacuation time compared to current models. Indeed, under a fixed number of people, when the stairwell angle is less than 34◦, the evacuation time decreases as the angle increases, and when the stairwell angle exceeds 34◦, the evacuation time is almost unchanged. Additionally, under a fixed number of evacuees, the evacuation time decreases as the width of the stairwell increases, and due to stairwell width space redundancy, the evacuation time tends to stabilize. The results of the new model research provide reference for the design of building safety evacuation, thereby improving the safety of buildings. © 2024 – IOS Press.
引用
收藏
页码:8273 / 8287
页数:14
相关论文
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  • [1] Galea E.R., A general approach to validating evacuation models with an application to EXODUS[J], Journal of Fire Sciences, 16, 6, pp. 414-436, (1998)
  • [2] Xiaoran L., Dehao L., Luemiao Z., Et al., Simulation and optimization of fixed refuge spaces considering cross district evacuation [J/OL], Journal of Safety and Environment, pp. 1-11
  • [3] Tao Z., Jianhua H., Yushi L., Et al., Simulation and optimization of emergency evacuation in subway stations based on pathfinder [J/OL], Journal of Underground Space and Engineering, pp. 1-11
  • [4] Li C., Xin H., Wenhua S., Research on steel structure building evacuation based on empirical formula method and SIMULEX simulation [J], Journal of Nankai University (Natural Science Edition), 49, pp. 21-28, (2016)
  • [5] Min Y., Yu Y., Calculation of Mixed Evacuation of Stair and Elevator Using EVACNET4, Procedia Engineering, 62, pp. 478-482, (2013)
  • [6] Tashrifullahi S.A., Hassanain M.A., A simulation model for emergency evacuation time of a library facility using EVACNET4[J], Structural Survey, 31, 2, pp. 75-92, (2013)
  • [7] Georgoudas I.G., Kyriakos R., Sirakoulis R.C., Et al., An FPGA implemented cellular automaton crowd evacuation model inspired by the electrostatic-induced potential fields[J], Microprocessors & Microsystems, 34, 7-8, pp. 285-300, (2010)
  • [8] Georgoudas G., Sirakoulis G.C., Andreadis I.T., An anticipative crowd management system preventing clogging in exits during pedestrian evacuation processes[J], IEEE Sy St J, 5, pp. 129-141, (2011)
  • [9] Zhang P., Jian X.X., Wong S.C., Et al., Potential field cellular automata model for pedestrian flow[J], Phys Rev E Stat Nonlin Soft Matter Phys, 85, 2, (2012)
  • [10] Gui Y., Haijun H., Yan X., A pedestrian evacuation cellular automaton model with diamond grid, Journal of Physics, 62, 1, (2013)