Train and Track Reasearch Institute, State Key Laboratory of Traction Power, Southwest Jiaotong University, Chengdu, China.
Train and Track Reasearch Institute, State Key Laboratory of Traction Power, Southwest Jiaotong University, Chengdu, China.
Sci Total Environ. 2019 Jun 10;668:485-499. doi: 10.1016/j.scitotenv.2019.02.397. Epub 2019 Mar 1.
Among all the recent improvements in the railway industry, ground vibration remains an important showstopper in metropolitan cities. In some particular cases, significant levels of vibration are felt by residents. The role of engineers is to propose mitigation solutions and to ensure that they are efficient in the long-term. This paper presents a numerical study of a large-scale building close to underground networks. A two-step time-frequency prediction method for train-induced vibrations of a superstructure is proposed in this work. In the first step, the spatial train-track coupled dynamic model in time domain is established and then simulated to obtain the vertical and lateral rail supporting forces (fastener forces). In the second step, the discrete Fourier Transform (DFT) of fastener forces are taken as the external loads of a finite element (FE) model of the track-tunnel-soil-building system to solve the building vibrations. On this basis, train-induced vibrations of the large-scale building are predicted under different train operation conditions, and two relevant standards are adopted to evaluate the building vibrations. Further, a base isolation measure, that consists in installing steel springs between the superstructure and the base, is employed to mitigate excessive building vibration. Results show that the underground train and track interaction could result in over-limit building vibrations. The train moving with a higher speed will deteriorate track vibration level and leads to more serious extent of over-limit vibrations of the larger-scale building. The base isolation measure can effectively reduce the excessive building vibrations, and also ensures the train-induced vibrations of the building to satisfy the relevant standard requirements under the worst train operation conditions.
在铁路行业的所有最新改进中,地面振动仍然是大都市的一个重要障碍。在某些特殊情况下,居民会感受到明显的振动水平。工程师的作用是提出缓解措施,并确保它们在长期内是有效的。本文对靠近地下网络的大型建筑物进行了数值研究。本文提出了一种用于预测上部结构列车引起振动的两步时频预测方法。在第一步中,建立了时域中空间列车轨道耦合动力学模型,并对其进行了模拟,以获得垂直和横向轨支撑力(扣件力)。在第二步中,将扣件力的离散傅里叶变换(DFT)作为轨道-隧道-土壤-建筑物系统的有限元(FE)模型的外部载荷来求解建筑物振动。在此基础上,预测了不同列车运行条件下大型建筑物的列车引起的振动,并采用了两个相关标准来评估建筑物的振动。此外,还采用了基础隔振措施,即在上部结构和基础之间安装钢弹簧,以减轻过大的建筑物振动。结果表明,地下列车和轨道的相互作用会导致建筑物的振动超过限值。列车以更高的速度移动会恶化轨道振动水平,并导致更大规模建筑物的超过限值振动更为严重。基础隔振措施可以有效地减少过大的建筑物振动,并确保在最恶劣的列车运行条件下,建筑物的列车引起的振动满足相关标准要求。