Steel and Composite Structures
Volume 48, Number 2, 2023, pages 207-233
DOI: 10.12989/scs.2023.48.2.207
Dynamic analysis of a coupled steel-concrete composite box girder bridgetrain system considering shear lag, constrained torsion, distortion and biaxial slip
Li Zhu, Ray Kai-Leung Su, Wei Liu, Tian-Nan Han and Chao Chen
Abstract
Steel-concrete composite box girder bridges are widely used in the construction of highway and railway bridges
both domestically and abroad due to their advantages of being light weight and having a large spanning ability and very large
torsional rigidity. Composite box girder bridges exhibit the effects of shear lag, restrained torsion, distortion and interface
bidirectional slip under various loads during operation. As one of the most commonly used calculation tools in bridge
engineering analysis, one-dimensional models offer the advantages of high calculation efficiency and strong stability. Currently,
research on the one-dimensional model of composite beams mainly focuses on simulating interface longitudinal slip and the
shear lag effect. There are relatively few studies on the one-dimensional model which can consider the effects of restrained
torsion, distortion and interface transverse slip. Additionally, there are few studies on vehicle-bridge integrated systems where a
one-dimensional model is used as a tool that only considers the calculations of natural frequency, mode and moving load
conditions to study the dynamic response of composite beams. Some scholars have established a dynamic analysis model of a
coupled composite beam bridge-train system, but where the composite beam is only simulated using a Euler beam or
Timoshenko beam. As a result, it is impossible to comprehensively consider multiple complex force effects, such as shear lag,
restrained torsion, distortion and interface bidirectional slip of composite beams. In this paper, a 27 DOF vehicle rigid body
model is used to simulate train operation. A two-node 26 DOF finite beam element with composed box beams considering the
effects of shear lag, restrained torsion, distortion and interface bidirectional slip is proposed. The dynamic analysis model of the
coupled composite box girder bridge-train system is constructed based on the wheel-rail contact relationship of vertical closefitting and lateral linear creeping slip. Furthermore, the accuracy of the dynamic analysis model is verified via the measured
dynamic response data of a practical composite box girder bridge. Finally, the dynamic analysis model is applied in order to
study the influence of various mechanical effects on the dynamic performance of the vehicle-bridge system.
Key Words
biaxial slip; constrained torsion; coupled steel-concrete composite bridge-train system; distortion; dynamic analysis; shear lag
Address
Li Zhu,Wei Liu, Tian-Nan Han and Chao Chen:School of Civil Engineering, Beijing Jiaotong University, Beijing, China
Ray Kai-Leung Su:Department of Civil Engineering, The University of Hong Kong, Hong Kong, China