Former Assistant Professor, Department of Civil Engineering, Qatar University, Doha, Qatar.
AECOM USA, Inc., New York City, NY, USA.
Sci Total Environ. 2020 Apr 1;711:134528. doi: 10.1016/j.scitotenv.2019.134528. Epub 2019 Nov 21.
Train movements generate oscillations that are transmitted as waves through the track support system into its surroundings. The vibration waves propagate through the soil layers and reach to nearby buildings creating distractions for human activities and causing equipment malfunctioning. Not only the train components and the rails, but also the surrounding tunnel, soil and rock strata have dynamic characteristics that play significant roles in the vibration levels felt in a nearby structure. This paper presents a finite element study conducted to investigate the vibrations resulting from train movements in nearby subway tunnels. The subway line is located at an average horizontal distance of 50 ft (15.2 m) from the structure in assessment, which is a six-story office building. The main goal of the work is to assess the train-induced vibrations at the ground level of the building through a case study and sensitivity analysis. A plane strain finite element model is built to represent the railroad tunnel embedded in the rock and the soil stratum above it. The one train loading function is applied to the model as a point source at the track level and compared to the two-train scenario. Other simulations are undertaken for sensitivity analysis involving increased loading, decreased damping and decreased distance to tunnels. Even though there are several numerical studies on the propagation of train induced vibrations in the literature; a finite element model accompanied with a sensitivity analysis has not been discussed in detail in a technical publication before. The paper not only presents the finite element modeling but also compares the results with the criteria of Transit Noise and Vibration Impact Assessment Manual, which was published by the Federal Transit Administration (FTA) of the U.S. Department of Transportation.
列车运行产生的振动通过轨道支撑系统以波的形式传递到周围环境中。振动波通过土壤层传播,并到达附近的建筑物,对人类活动造成干扰,并导致设备故障。不仅是列车部件和轨道,周围的隧道、土壤和岩层也具有动态特性,对附近结构中感受到的振动水平起着重要作用。本文介绍了一项有限元研究,旨在调查地铁隧道附近列车运行引起的振动。地铁线路位于评估结构的平均水平距离为 50 英尺(15.2 米)处,这是一座六层高的办公楼。这项工作的主要目标是通过案例研究和敏感性分析来评估建筑物地面层的列车引起的振动。建立了一个平面应变有限元模型来代表嵌入岩石中的铁路隧道和上方的土壤地层。将单列车加载功能作为轨道层上的点源应用于模型,并与双列车情况进行比较。还进行了其他涉及增加荷载、降低阻尼和减小与隧道距离的敏感性分析模拟。尽管文献中有许多关于列车引起的振动传播的数值研究,但以前在技术出版物中并没有详细讨论有限元模型和敏感性分析。本文不仅介绍了有限元建模,还将结果与美国交通部联邦交通管理局(FTA)发布的《交通噪声和振动影响评估手册》的标准进行了比较。