Ezaki Takahiro, Yanagisawa Daichi, Nishinari Katsuhiro
Department of Aeronautics and Astronautics, School of Engineering, The University of Tokyo, Tokyo, Japan.
Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Aug;86(2 Pt 2):026118. doi: 10.1103/PhysRevE.86.026118. Epub 2012 Aug 30.
We investigate the dynamics of the evacuation process with multiple bottlenecks using the floor field model. To deal with this problem, we first focus on a part of the system and report its microscopic behavior. The system is controlled by parameters of inflow and the competitiveness of the pedestrians, and large inflow leads to a congested situation. Through simulations, the metastable state induced by conflicts of pedestrians is observed. The metastability is related to the phase transition from free flow to congestion. The critical condition of the transition is theoretically derived. In addition, we give simulation results of situations with multiple bottlenecks. They imply that local improvement of pedestrian flow sometimes adversely affects the total evacuation time, and that the total optimization of the system is not straightforward.
我们使用楼层场模型研究具有多个瓶颈的疏散过程的动态特性。为了解决这个问题,我们首先关注系统的一部分并报告其微观行为。该系统由人流参数和行人的竞争力控制,大量人流会导致拥堵情况。通过模拟,观察到行人冲突引起的亚稳态。这种亚稳态与从自由流动到拥堵的相变有关。从理论上推导了转变的临界条件。此外,我们给出了具有多个瓶颈情况的模拟结果。结果表明,局部改善行人流动有时会对总疏散时间产生不利影响,并且系统的整体优化并非易事。