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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (6): 1133-1144.DOI: 10.3973/j.issn.2096-4498.2026.06.001

• 研究与探索 • 上一篇    下一篇

模筑混凝土加固管片抗弯性能试验

曹伟飚1, 李伊美2, 王书磊1, 洪剑宇2, 柳献2, *   

  1. (1. 上海市隧道工程轨道交通设计研究院, 上海 200235; 2. 同济大学土木工程学院, 上海 200092)
  • 出版日期:2026-06-20 发布日期:2026-06-20
  • 作者简介:曹伟飚(1972—),男,江苏兴化人,1994年毕业于同济大学,地下建筑与结构专业,本科,教授级高级工程师,主要从事地下工程结构设计相关工作。E-mail: 825023924@qq.com。 *通信作者: 柳献, E-mail: xian.liu@tongji.edu.cn。

Flexural Performance Test of Segments Strengthened With Molded Concrete

CAO Weibiao1, LI Yimei2, WANG Shulei1, HONG Jianyu2, LIU Xian2, *   

  1. (1. Shanghai Tunnel Engineering & Rail Transit Design and Research Institute, Shanghai 200235, China; 2. College of Civil Engineering, Tongji University, Shanghai 200092, China)
  • Online:2026-06-20 Published:2026-06-20

摘要: 为解决盾构隧道传统加固工法施工耗时长、效率低等不足,实现快速修复,提出一种采用高延性混凝土(ECC)作为预制免拆模板,C60混凝土灌浆作为加固主体的新型管片加固工艺,并开展足尺试验探究加固结构的力学性能。得出: 1)加固结构的破坏模式可分为弹性阶段、损伤发展阶段、极限破坏阶段3个阶段;弹性阶段,结构本体、加固体以及黏结界面各自按比例承担一定的荷载;当三者之一开始出现损伤时,结构各部分内力开始发生显著调整,进入损伤发展阶段;当三者之一完全破坏时,结构刚度明显下降,进入极限破坏阶段。2)加固管片的极限承载力和刚度均高于加固接头,但结构的极限变形小于加固接头;负弯矩工况下的加固结构刚度均高于正弯矩工况;正负弯矩工况下接头的极限承载力接近,正弯矩工况下管片的极限承载力低于负弯矩工况。3)相较于常规混凝土材料,ECC具有强度高、密度小等优点,综合性能优异,适用于制备预制免拆模板;加固施工时,应对隧道结构的拱顶与接头部位进行加强凿毛、加强植筋等操作,以提高界面连接强度。

关键词: 盾构隧道, 高延性混凝土, 抗弯性能, 结构加固, 足尺试验

Abstract: Conventional shield tunnel strengthening faces various limitations, such as time-consuming construction and low efficiency. Therefore, in this study, a novel segment strengthening technique is proposed to address these limitations and achieve rapid repair. This technique utilizes engineered cementitious composite (ECC) as a prefabricated, non-removable formwork, with C60 concrete grouting forming the reinforcement core. Full-scale tests are conducted to investigate the mechanical performance of the strengthened structure, leading to the following conclusions: (1) The failure mode of the reinforced structure can be divided into three stages: the elastic, damage development, and ultimate failure stages. In the elastic stage, the original structure, reinforcement body, and bonding interface proportionally share the load. As damage is initiated, the internal forces among the structural parts undergo considerable adjustment, marking the transition into the damage development stage. Complete failure of any component leads to a dramatic degradation of the structural stiffness, entering the ultimate failure stage. (2) Reinforced segments exhibit higher ultimate bearing capacity and stiffness compared to reinforced joints, even though the ultimate deformation of the structure is smaller. Under a negative bending moment, the stiffness of the reinforced structure is higher than under a positive bending moment. The ultimate joint capacity remains similar for positive and negative bending moments, whereas the ultimate bearing capacity of segments under a positive bending moment is lower than under a negative bending moment. (3) ECC offers several advantages over conventional concrete, such as high strength and low density, making it an excellent material for prefabricated, non-removable formworks due to its excellent overall performance. During reinforcement construction, intensified surface roughening and enhanced post-installed anchoring are recommended for the crown and joints of the tunnel structure to improve interfacial bonding strength.

Key words: shield tunnel, engineered cementitious composite, flexural performance, structural reinforcement, full-scale test