Urban rail transit often operates with high service frequencies to serve heavy passenger demand during rush hours. Such operations can be delayed by two types of congestion: train congestion and passenger congestion, both of which interact with each other. This delay is problematic for many transit systems, since it can be amplified due to the interaction. However, there are no tractable models describing them; and it makes difficult to analyze management strategies of congested transit systems in general and tractable ways. To fill this gap, this article proposes simple yet physical and dynamic model of urban rail transit. First, a fundamental diagram of transit system (i.e., theoretical relation among train-flow, train-density, and passenger-flow) is analytically derived considering the aforementioned physical interaction. Then, a macroscopic model of transit system for dynamic transit assignment is developed based on the fundamental diagram. Finally, accuracy of the macroscopic model is investigated by comparing to microscopic simulation. The proposed models would be useful for mathematical analysis on management strategies of urban rail transit systems, in a similar way that the macroscopic fundamental diagram of urban traffic did.
翻译:城市铁路过境往往以高服务频率运作,以便在高峰时段满足繁忙的旅客需求,这种业务可能因两种类型的堵塞而推迟:火车堵塞和乘客拥堵,两者相互作用。这种拖延对于许多过境系统来说是成问题的,因为由于相互作用,这种拖延可以扩大;然而,没有可移植的模式来描述这些过境系统;而且很难以一般和可移动的方式分析凝聚的过境系统的管理战略。为填补这一空白,本文章提出了城市铁路过境系统简单而有形和动态的模式。首先,考虑到上述的实际相互作用,对过境系统的基本图(即火车流量、火车密度和乘客流量之间的理论关系)进行了分析,然后,根据基本图发展了动态过境任务宏观过境系统模型。最后,通过与微观模拟比较,对宏观模式的准确性进行了调查。拟议的模型将有助于城市铁路过境系统管理战略的数学分析,其方式与城市交通的宏观基本图相似。