TBM隧道六边形管片接头性能模型试验研究

Model test study on the performance of hexagonal segment joints in TBM tunnels

  • 摘要: TBM隧道六边形管片因无螺栓连接及高效拼装工艺而备受关注,其接头力学行为是决定衬砌结构性能的关键。选用几何相似比为1∶10的大比尺预制六边形管片模型的1/2弧段进行拼装,构成接头构件,并采用自主设计的加载系统,在恒定偏心距条件下分别施加正、负弯矩,系统研究不同弯曲模式下接头的受力机制及接缝张开与错台演化规律。结果表明:正弯矩作用下,接头受力变形呈现阶段性特征,依次经历弹性变形、接触面相对滑移引起的接缝张开与错台发展,及极限状态下接头局部压溃3个阶段;破坏时接头上表面应变急剧增长至材料强度极限,表现为典型的材料强度破坏。负弯矩作用下,接头力学响应主要受几何非线性控制,六边形管片的拱效应在线性变形后逐渐减弱乃至消失;在轴向力与负弯矩耦合作用下,接头有效受压区高度持续减小,管片呈现向外侧挤出的演化趋势;破坏瞬间接头峰值应变仅为正弯矩工况的72.78%,表现为“散架”式整体失稳破坏,表明承载力受结构稳定性而非材料强度控制。

     

    Abstract: Hexagonal segments for TBM tunnels have attracted extensive attention due to bolt-free connection and efficient assembly technology, and the mechanical behavior of joints acts as the key factor determining the performance of lining structures. Half-arcs of large-scale precast hexagonal segment models with a geometric similarity ratio of 1:10 were assembled to form joint specimens. A self-designed loading system was adopted to apply positive and negative bending moments separately under constant eccentricity, so as to systematically investigate the force-bearing mechanism of joints and the evolution laws of joint opening and dislocation under different bending modes. The results show that under positive bending moments, the force and deformation of joints present staged characteristics, which successively go through three stages: elastic deformation, development of joint opening and dislocation caused by relative slip of contact surfaces, and local crushing of joints at the ultimate state. Upon failure, the strain on the upper surface of joints rises sharply to the ultimate material strength, showing typical material strength failure. Under negative bending moments, the mechanical response of joints is mainly governed by geometric nonlinearity. The arching effect of hexagonal segments gradually weakens and even disappears after linear deformation. Under the coupling effect of axial force and negative bending moment, the effective compression height of joints keeps decreasing, and the segments tend to extrude outward. At the moment of failure, the peak strain of joints is only 72.78% of that under the positive bending moment working condition, presenting an integral instability failure mode of "disintegration", which indicates that the bearing capacity is controlled by structural stability rather than material strength.

     

/

返回文章
返回