• CSCD核心中文核心科技核心
  • RCCSE(A+)公路运输高质量期刊T1
  • Ei CompendexScopusWJCI
  • EBSCOPж(AJ)JST
二维码

隧道建设(中英文) ›› 2025, Vol. 45 ›› Issue (2): 295-303.DOI: 10.3973/j.issn.2096-4498.2025.02.005

• 研究与探索 • 上一篇    下一篇

盾构隧道施工诱发邻近单桩的振动响应规律

赵广资1, 李克金2, 李春林1, 仇晖2, 马悦3, 汪优3 *   

  1. 1. 中铁十八局集团有限公司, 天津 300350 2.中铁建黄河投资建设有限公司, 山东 济南 250108; 3. 中南大学土木工程学院, 湖南 长沙 410075)

  • 出版日期:2025-02-20 发布日期:2025-02-20
  • 作者简介:赵广资(1982—),男,山东临沂人,2006年毕业于山东理工大学,交通工程专业,本科,正高级工程师,主要从事隧道与地下工程研究工作。 E-mail: 1019676585@qq.com。 *通信作者: 汪优, E-mail: ywang1920@csu.edu.cn。

Vibration Response Patterns of Adjacent Single Piles Induced by Shield Tunneling

ZHAO Guangzi1, LI Kejin1, LI Chunlin2, QIU Hui2, MA Yue3, WANG You3, *   

  1. (1. China Railway 18th Bureau Group Corporation Limited, Tianjin 300350, China; 2. China Railway Construction Yellow River Investment Construction Co., Ltd, Jinan 250108, Shandong, China; 3. College of Civil Engineering, Central South University, Changsha 410075, Hunan, China)

  • Online:2025-02-20 Published:2025-02-20

摘要: 为了探究盾构施工引起的不同桩-隧间距下的单桩动力响应规律,依托济南地铁4号线某工区,采用离散元与有限差分耦合法(DEM-FDM),结合现场实测数据,建立隧道结构-土体-桩二维动力耦合模型。利用DEM模拟岩土材料的特性,结合FDM对混凝土结构的高效动力计算,模拟距隧道18 m范围内不同桩-隧间距下的单桩动力响应工况,并对盾构施工振动时程数据和频谱特征进行监测与分析。研究结果表明: 1)盾构隧道施工引起的邻近桩振动响应随桩-隧间距的增加呈现出幂函数或指数型衰减规律,其中,桩顶的衰减较不显著,桩底及与隧道同埋深的部位衰减较为显著; 2)基于桩-隧间距的不同,影响范围可分为强影响范围(<3 m)、中强影响范围(3~9 m)、中弱影响范围(9~12 m)、弱影响范围(>12 m4部分; 3)随着桩-隧距离的增加,振动信号中的高频成分逐渐消失,而低频成分则能够传播较远距离,仍会引起桩的伴随振动; 4)盾构施工振动产生的能量90%以上集中在0~64 Hz,低频段振动对结构的影响更加显著。

关键词: 硬岩地层, 盾构隧道, 施工振动, 离散元与有限差分耦合, -隧间距, 动力响应

Abstract: The authors investigate the dynamic response patterns of single piles at varying pile-to-tunnel distances induced by shield tunneling. The discrete element method-finite difference method (DEM-FDM) is employed to develop a two-dimensional dynamic coupling model of the tunnel structure, soil, and pile, based on field measurement data. A case study is conducted on a section of Jinan metro line 4 in China. DEM is used to simulate the properties of soil materials, while FDM enables efficient dynamic calculations of concrete structures, simulating the dynamic responses of single piles within an 18 m radius of the tunnel under different pile-to-tunnel distances. Shield tunneling vibration time-history data and spectral characteristics are monitored and analyzed, and the results reveal the following: (1) The vibration response of adjacent piles caused by shield tunneling follows a power-law or exponential decay pattern as the pile-to-tunnel distance increases, with less significant attenuation at the pile top and more pronounced attenuation at the pile bottom and at the depth corresponding to the tunnel. (2) Based on different pile-to-tunnel distances, the tunneling influence range is classified into four categories: strong influence (<3 m), moderately strong influence (39 m), moderately weak influence (912 m), and weak influence (>12 m). (3) As the pile-to-tunnel distance increases, the high-frequency components of the vibration signals gradually diminish, while low-frequency components propagate further, still inducing vibrations in the pile. (4) Over 90% of the shield tunneling vibration energy is concentrated in the 064 Hz range, with low-frequency vibrations exerting a more significant impact on structures.

Key words: hard rock strata, shield tunnel, construction vibration, discrete element method-finite difference coupling, pile-tunnel spacing, dynamic response