Seismic Response of Ground Penetrating Shield Tunnels Under Lateral Harmonic Excitations: Insights From Shaking Table Test

IF 5 2区 工程技术 Q1 ENGINEERING, CIVIL Earthquake Engineering & Structural Dynamics Pub Date : 2024-12-09 DOI:10.1002/eqe.4284
Yong Yuan, Qi Wang, Tao Liu, Haitao Yu, Ioannis Anastasopoulos
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Abstract

The ground penetrating shield tunnel (GPST) method offers a streamlined approach to tunnel construction in soft ground with limited open-cut excavation. To explore the seismic response of GPST linings, a series of large-scale shaking table tests have been conducted, including a variety of seismic excitations. This paper focuses on lateral harmonic excitation. The model tunnel spans a total length of 7.7 m, with the embedment depth ranging from −0.5 to 0.5 times its diameter. The design and fabrication of the model tunnel are presented, including the segmental lining, along with circumferential and longitudinal joints. The soil was modeled with artificial synthetic soil, aiming to simulate the static and dynamic characteristics of the prototype soil. Its composition was adjusted and verified through element tests. The experimental results provide insights into the seismic response of the soil–tunnel system, the ovaling deformation of the segmental lining, as well as the response of the joints between lining segments. The results reveal a strong influence of embedment on tunnel seismic response. The reduction of tunnel embedment leads to a significant increase in lining accelerations and a phase difference, resulting in a “whiplash” effect. In contrast, the ovaling deformation of the lining and the joint apertures decrease with the reduction of embedment. In the sections of the tunnel that are fully embedded, both the acceleration and deformation response of the lining are governed by soil–structure interaction (SSI). A pronounced whiplash effect is observed in the sections of the tunnel that are not fully embedded, due to the absence of soil confinement. The presented experimental results offer valuable insights into the seismic response of GPSTs, which can be of crucial importance for their seismic design.

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横向谐波激励下盾构隧道的地震响应:振动台试验的启示
盾构隧道法(GPST)为软土地基有限开孔隧道施工提供了一种简化的施工方法。为了探讨GPST衬砌的地震响应,进行了一系列大型振动台试验,包括多种地震激励。本文主要研究横向谐波激励。模型隧道全长7.7 m,埋深为隧道直径的- 0.5 ~ 0.5倍。介绍了模型隧道的设计和制作,包括分段衬砌,以及环缝和纵缝。采用人工合成土对土壤进行建模,模拟原型土的静态和动态特性。通过元素试验对其成分进行了调整和验证。试验结果对土体-隧道体系的地震响应、管片衬砌的椭圆形变形以及管片间接缝的响应提供了深入的认识。结果表明,埋置对隧道地震反应有较大影响。隧道埋置的减少会导致衬砌加速度和相位差的显著增加,从而产生“鞭状”效应。随着埋置量的减少,衬砌和接缝孔径的椭圆变形减小。在隧道全埋段,衬砌的加速度和变形响应均受土-结构相互作用(SSI)的控制。由于缺乏土壤约束,在未完全嵌入的隧道部分观察到明显的鞭状效应。所提出的实验结果为研究gpst的地震反应提供了有价值的见解,这对其抗震设计至关重要。
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来源期刊
Earthquake Engineering & Structural Dynamics
Earthquake Engineering & Structural Dynamics 工程技术-工程:地质
CiteScore
7.20
自引率
13.30%
发文量
180
审稿时长
4.8 months
期刊介绍: Earthquake Engineering and Structural Dynamics provides a forum for the publication of papers on several aspects of engineering related to earthquakes. The problems in this field, and their solutions, are international in character and require knowledge of several traditional disciplines; the Journal will reflect this. Papers that may be relevant but do not emphasize earthquake engineering and related structural dynamics are not suitable for the Journal. Relevant topics include the following: ground motions for analysis and design geotechnical earthquake engineering probabilistic and deterministic methods of dynamic analysis experimental behaviour of structures seismic protective systems system identification risk assessment seismic code requirements methods for earthquake-resistant design and retrofit of structures.
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Issue information Issue information Bayesian Identification of Soil-Structure Systems Using Seismic Response Measurements: A Case Study on a Field Test Structure Combined Vertical and Horizontal Components of Near-Source Earthquakes and Impact on Base-Isolated Structures Structural Health Monitoring of a Unidirectional Isolation Bridge: Bidirectional Seismic Behavior, Stochastic Model Updating, and Prediction
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