The effect of rescue behavior for crowd evacuation via modified social force model

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Zhe Liu , Bing Qiu , Hua Kuang , Xingli Li
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引用次数: 0

Abstract

The modeling of rescue behavior is an important topic in pedestrian evacuation dynamics. In order to study rescue behavior for the injured pedestrian, a modified social force model is proposed to simulate crowd evacuation through considering the rescue attraction force and different movement mechanisms (e.g., other pedestrians’ avoidance of the rescuers and the injured individuals during the rescue process). The interaction rules between the rescuer and the injured individual are established to describe rescue behavior. A comparison is conducted on the impacts of with or without rescue behavior on evacuation efficiency. The influences of the position distributions and the number of rescuers, the avoidance strength, the rescue time and the distribution of injured pedestrian on evacuation dynamics in a hall are investigated. And the typical spatiotemporal dynamic characteristic during the evacuation process is also discussed. The simulation results show that considering the rescue behavior will reduce the total evacuation time evidently. The evacuation efficiency is the highest when the rescue is located in the center of the hall wall and away from the exit. Furthermore, the shorter the rescue time, the higher the evacuation efficiency, and the avoidance strength plays an important role on evacuation efficiency. In particular, an interesting self-organization phenomenon that the formation of a local rescue channel between the rescuer and the injured individual is discovered. Comparing to one rescuer, multiple rescuers can effectively improve evacuation efficiency. This study can provide a theoretical guidance for fast and safe rescue behavior in emergency situations.
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来源期刊
CiteScore
7.20
自引率
9.10%
发文量
852
审稿时长
6.6 months
期刊介绍: Physica A: Statistical Mechanics and its Applications Recognized by the European Physical Society Physica A publishes research in the field of statistical mechanics and its applications. Statistical mechanics sets out to explain the behaviour of macroscopic systems by studying the statistical properties of their microscopic constituents. Applications of the techniques of statistical mechanics are widespread, and include: applications to physical systems such as solids, liquids and gases; applications to chemical and biological systems (colloids, interfaces, complex fluids, polymers and biopolymers, cell physics); and other interdisciplinary applications to for instance biological, economical and sociological systems.
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