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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (5): 1073-1084.DOI: 10.3973/j.issn.2096-4498.2026.05.014

• 规划与设计 • 上一篇    下一篇

长江漫滩软弱富水地层装配式超深竖井设计关键技术

李佳琪, 王乐明, 马志富, 孟庆余, 杨昊, 刘撞撞, 王朋乐   

  1. (中国铁路设计集团有限公司, 天津 300308)
  • 出版日期:2026-05-20 发布日期:2026-05-20
  • 作者简介:李佳琪(1994—),男,山西运城人,2019年毕业于兰州交通大学,桥梁与隧道工程专业,硕士,工程师,现从事隧道与地下工程设计研究工作。E-mail: 1412663578@qq.com。

Key Technologies for Designing Prefabricated Ultra-Deep Shafts in Weak and Water-Rich Strata of Yangtze River Floodplain

LI Jiaqi, WANG Leming, MA Zhifu, MENG Qingyu, YANG Hao, LIU Zhuangzhuang, WANG Pengle   

  1. (China Railway Design Corporation, Tianjin 300308, China)
  • Online:2026-05-20 Published:2026-05-20

摘要:

针对传统明挖法或沉井法在富水软弱地层中施工超深竖井面临的施工风险和技术难题,以沪渝蓉高铁崇太长江隧道2号竖井工程为背景,探讨软弱富水地层装配式超深竖井在采用下沉式竖井掘进机工法(VSM)施工时的设计要点和关键技术。由于大直径盾构需对装配式竖井结构二次开孔,为增强装配式竖井结构整体刚度,开展新型装配式竖井管片结构体系研究,建立三维有限元模型,分别采用极正交各向异性和各向同性结构模拟下沉开孔施工全过程,系统分析结构二次开孔前后的受力变形特征。研究结果表明: 1)新型“翼型”通用管片可有效增强装配式竖井在面临二次开孔时的整体刚度,避免传统管片环向螺栓复紧以及螺栓孔防水的难题。可利用“预制+现浇”叠合结构,建立双侧开孔装配式竖井空间立体加固结构体系,构建装配式竖井综合防水体系。2)整体受力呈现出极正交各向异性结构水平不利、各向同性结构竖向更为不利的规律,在结构设计时应包络计算。3)大直径盾构二次开孔对结构受力影响显著,应重点关注结构竖向受力,相应部位管片配筋应予以加强。

关键词: 软弱富水地层, 装配式超深竖井, 竖井掘进机, 极正交各向异性, 大直径盾构, “翼型”通用管片, 二次开孔

Abstract:

While establishing ultra-deep vertical shafts, there are construction risks and technical difficulties when employing traditional open-cut or caisson methods in water-rich and weak strata. To mitigate these difficulties, this study examines the design points and key technologies of prefabricated ultra-deep vertical shafts in soft and water-rich strata. A case study is conducted on the vertical-shaft sinking machine construction method based on the Chongtai Yangtze River Tunnel No. 2 vertical-shaft project of the Shanghai-Chongqing-Chengdu High-speed Railway. Because the prefabricated vertical-shaft structure should be secondarily opened in large-diameter shield tunneling, the overall stiffness of the prefabricated vertical-shaft structure was enhanced with a novel type of prefabricated vertical-shaft segment structure system. The entire sinking and drilling construction process is simulated in extremely orthogonal anisotropic and isotropic structures using a three-dimensional finite element model. The stress and deformation characteristics are systematically analyzed before and after secondary drilling of the structure. Main findings are as follows: (1) The novel wing-shaped universal segment effectively enhances the overall stiffness of prefabricated vertical shafts facing secondary openings, thereby avoiding the problems of traditional segment circumferential bolt retightening and bolt hole waterproofing. The combination of prefabricated and cast-in-place structures can be utilized to establish a three-dimensional reinforcement structure system for double-sided perforated prefabricated vertical shafts and a comprehensive waterproof system for general prefabricated vertical shafts. (2) Highly orthogonal anisotropic structures and isotropic structures are structurally weaker in the horizontal and vertical directions, respectively, necessitating envelope calculations during structural design. (3) The secondary opening of large-diameter shield tunneling dramatically affects the structural stress, and the vertical stress of the structure requires special attention. The reinforcement of the corresponding segments should be strengthened.

Key words: water-rich and weak strata, prefabricated ultra-deep vertical shaft, vertical-shaft sinking machine, extreme orthogonal anisotropy, large-diameter shield, wing-shaped universal segment, secondary opening