Field Testing and Numerical Simulation of the Dynamic Response of Loess Hill Site under High-Speed Train Load

IF 1.2 4区 工程技术 Q3 ACOUSTICS Shock and Vibration Pub Date : 2024-02-27 DOI:10.1155/2024/3510391
Wujian Yan, Xinxin Tian, Ping Wang, Lin Kang, Zhijian Wu
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引用次数: 0

Abstract

In this study, the loess hill site of an elevated bridge section in Tongwei-Qin’an of the Baolan high-speed railroad was selected as the research object, and the vibration acceleration of the loess hill site under the elevated bridge was tested in the field under the train operating load. The results show that under the same intensity of train load, the time range of vibration acceleration observed by field test and numerical simulation decays linearly with increasing distance from the source, while the amplification effect appears in the loess hill site at a greater distance, and the vibration duration also appears to increase. The vibration acceleration waveforms at each observation point observed by field tests and numerical simulations are similar, and the peak vertical acceleration at each observation point obtained from numerical simulations is overall greater than the peak acceleration at each point obtained from field tests, with / values ranging from 1.04 to 1.63. The Fourier spectrum frequencies recorded by numerical simulation and field test are mainly concentrated in the range of 1∼40 Hz, but the difference between the main frequencies recorded by the two is large. The main frequency of the energy spectrum recorded by the numerical simulation is around 15 Hz, which is the same as the main frequency of the energy spectrum vibration of the input vibration wave, and the main frequency of the energy spectrum vibration recorded by the field test is around 25 Hz.
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高速列车载荷下黄土丘陵地动态响应的现场测试与数值模拟
本研究选取宝兰高铁通渭至秦安段高架桥下的黄土丘陵地段作为研究对象,对高架桥下黄土丘陵地段在列车运行荷载作用下的振动加速度进行了现场测试。结果表明,在相同强度的列车荷载作用下,现场测试和数值模拟观测到的振动加速度时间范围随距离振源距离的增加呈线性衰减,而距离较大的黄土丘陵场地出现了放大效应,振动持续时间也出现了增加。现场试验和数值模拟观测到的各观测点振动加速度波形相似,数值模拟得到的各观测点垂直加速度峰值总体上大于现场试验得到的各观测点加速度峰值,/值在 1.04 至 1.63 之间。数值模拟和现场测试记录的傅立叶频谱频率主要集中在 1~40 Hz 范围内,但两者记录的主频差异较大。数值模拟记录的能谱主频在 15 Hz 左右,与输入振动波的能谱振动主频相同,而现场试验记录的能谱振动主频在 25 Hz 左右。
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来源期刊
Shock and Vibration
Shock and Vibration 物理-工程:机械
CiteScore
3.40
自引率
6.20%
发文量
384
审稿时长
3 months
期刊介绍: Shock and Vibration publishes papers on all aspects of shock and vibration, especially in relation to civil, mechanical and aerospace engineering applications, as well as transport, materials and geoscience. Papers may be theoretical or experimental, and either fundamental or highly applied.
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