Affiliation:
1. Department of Geotechnical Engineering, College of Civil Engineering Tongji University Shanghai China
Abstract
AbstractThe capacity of the circumferential joint of the precast concrete segmental tunnel lining (PCTL) structure in terms of shear performance principally includes the dowel action by connector/bolt as well as friction force, and it is a vital parameter to assess the mechanical response of the circumferential joint. Further, as there was no analytical model available for precise estimation of a circumferential joint in terms of the shear‐bearing capacity considering the dowel action of the bolt in the presence of axial/normal force, therefore in this investigation, an analytical model has been proposed to estimate the shear‐bearing capacity of the circumferential joint. Furthermore, the analytical model's precision and accuracy were validated via large‐scale experimental investigation on a circumferential joint of PCTL. Upon comparing analytical model outcomes with experimental results, absolute error varied between +5% and −9%, with an average value of the coefficient of friction at the yield point of the bolt. Moreover, the formation of hinges on the side of the bolt within the segment was considered a failure of the circumferential joint. Additionally, the parametric investigation revealed that with just a 1% change in axial force, the diameter, pre‐tightening, and yield strength of the bolt and concrete strength improved by 2.85%, 1%, 0.27%, 0.26% and 0.17% shear‐bearing capacity of the circumferential joint respectively. Axial force variation greatly influences the shear‐bearing capacity of circumferential joint followed by diameter, pre‐tightening, yield strength of the bolt, and concrete strength. Conclusively, with analysis of axial force distribution around the ring for the tunnel, the proposed model has been applied to a full ring to estimate shear bearing capacity.
Funder
National Natural Science Foundation of China
China Scholarship Council
Reference53 articles.
1. Experimental and Analytical Modeling of Shield Segment under Cyclic Loading
2. Ultimate load-carrying capacity of the longitudinal joints in segmental tunnel linings
3. Numerical simulation and simplified analytical model for the longitudinal joint bending stiffness of a tunnel considering axial force
4. Shearing behavior of circumferential joints with oblique bolts in large diameter shield tunnel;Zhang DM;China J Highway Transport,2020
5. Full‐scale experimental study on shear characteristics of oblique bolt and tenon circumferential joint of large diameter shield tunnel;Tian Y;Railway Standard Design,2022