This paper proposes a macroscopic model to describe the equilibrium distribution of passenger arrivals for the morning commute problem in a congested urban rail transit system. We use a macroscopic train operation sub-model developed by Seo et al (2017a,b) to express the interaction between the dynamics of passengers and trains in a simplified manner while maintaining their essential physical relations. The equilibrium conditions of the proposed model are derived and a solution method is provided. The characteristics of the equilibrium are then examined through analytical discussion and numerical examples. As an application of the proposed model, we analyze a simple time-dependent timetable optimization problem with equilibrium constraints and reveal that a "capacity increasing paradox" exists such that a higher dispatch frequency can increase the equilibrium cost. Furthermore, insights into the design of the timetable are obtained and the timetable influence on passengers' equilibrium travel costs are evaluated.
翻译:本文提出了一个宏观模型,用以描述在拥挤的城市铁路交通系统中为上午通勤问题抵达旅客的均衡分布;我们使用由Seo等人(2017a,b)开发的大型列车操作子模型(2017a,b),以简化的方式表达乘客动态和列车动态之间的相互作用,同时保持基本的物理关系;从中得出拟议模式的平衡条件并提供解决办法;然后通过分析讨论和数字实例审查平衡的特点;作为应用拟议模式,我们分析一个简单的、时间依赖时间的均衡限制时间表优化问题,并揭示存在“能力增加悖论”,以致发送频率增加平衡成本;此外,对时间表的设计进行了深入了解,并评估了时间表对乘客均衡旅行费用的影响。