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Modeling of pedestrian evacuation under fire emergency based on an extended heterogeneous lattice gas model

机译:基于扩展异构网格气体模型的火灾应急疏散模型

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An extended heterogeneous lattice gas (E-HLG) model is developed by introducing an altitude factor into the heterogeneous lattice gas (HLG) model. The altitude factor is used to describe the position height of lattice sites. Evacuation features from a terrace classroom are investigated through simulations using both the model and experiments. To study evacuation processes under fire emergency, an agent-based fire and pedestrian interaction (FPI) model is proposed. It is supposed that the possible moving directions of a pedestrian depend on the environmental temperature field, which is simulated by the software FDS. The walking speed reduction due to the visibility worsening in the FPI model is described by a multi-grid method. It is found that simulation results based on the extended HLG model are in good agreement with the experiments. The altitude factor plays a guidance role to the evacuation, and the fire notably delays the evacuation due to both the harmfulness of the high temperature field and the change of evacuation routes which results in frequent local jamming and clogging.
机译:通过将高度因子引入非均质晶格气(HLG)模型中,开发了扩展的非均质晶格气(E-HLG)模型。海拔因子用于描述晶格位置的位置高度。通过使用模型和实验进行模拟,研究了露台教室的疏散特征。为了研究火灾紧急情况下的疏散过程,提出了一种基于主体的火灾与行人互动(FPI)模型。假定行人可能的行进方向取决于环境温度场,该环境温度由软件FDS模拟。通过多网格方法描述了由于FPI模型中可见性恶化而导致的步行速度降低。结果表明,基于扩展HLG模型的仿真结果与实验吻合良好。高度因素对撤离起着指导作用,由于高温场的危害和撤离路线的改变,火灾明显延迟了撤离,这导致频繁的局部堵塞和阻塞。

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