Some Design Improvements for Integral Bridges

Author(s):  
George L. England ◽  
Neil C M Tsang ◽  
Pedro Ferreira ◽  
Bruno S Teixeira
Keyword(s):  
Bauingenieur ◽  
2020 ◽  
Vol 95 (11) ◽  
pp. S 2-S 11
Author(s):  
H. D. B. Aji ◽  
M. B. Basnet ◽  
Frank Wuttke

Abstract The identification of the dynamic behaviour of a structure is one of the crucial steps in the design of the dynamic resistance of the structure. The dynamic behaviour is represented by the natural frequencies and damping which are subsequently used along with the considered dynamic actions in the design process. In regard of integral bridge concept, one of the consequences of the omission of joints and bearings is the substantial soil-structure interaction which in turn increases the sensitivity of the dynamic behaviour of the bridges to the surrounding soil characteristic. In this article, we extended our hybrid BEM-FEM steady-state dynamic numerical tool to the 3D regime, developed by utilizing an in-house BEM and the commercial FEM software ABAQUS and use it to analyse the dynamic interaction between the bridge and the underlying soil as well as the backfill. The numerical results from four typical integral bridges show that underlying soil characteristic has great effect on the resonant frequencies and the damping. The backfill material properties tend to have less significant role due to the abutment wingwalls dominating the force transfer between the soil and the superstructure. The results also show that the degree of influence of the soil-structure interaction on the coupled system is affected by the type of load pattern in addition to the flexural stiffness of the superstructure.


2011 ◽  
Vol 21 (3) ◽  
pp. 260-260
Author(s):  
Ann Schumacher ◽  
Andrea Frangi
Keyword(s):  

2013 ◽  
Vol 2013 ◽  
pp. 1-13 ◽  
Author(s):  
Ehsan Mohtashami ◽  
Ahmad Shooshtari

This paper presents a new adaptive pushover procedure to account for the effect of higher modes in order to accurately estimate the seismic response of bridges. The effect of higher modes is considered by introducing a minimum value for the total effective modal mass. The proposed method employs enough number of modes to ensure that the defined total effective modal mass participates in all increments of the pushover loading. An adaptive demand curve is also developed for assessment of the seismic demand. The efficiency and robustness of the proposed method are demonstrated by conducting a parametric study. The analysis includes 18 four-span integral bridges with various heights of piers. The inelastic response history analysis is employed as reference solution in this study. Numerical results indicate excellent accuracy of the proposed method in assessment of the seismic response. For most bridges investigated in this study, the difference between the estimated response of the proposed method and the inelastic response history analysis is less than 25% for displacements and 10% for internal forces. This indicates a very good accuracy compared to available pushover procedures in the literature. The proposed method is therefore recommended to be applied to the seismic performance evaluation of integral bridges for engineering applications.


Author(s):  
Moustafa Al-Ani ◽  
Alexei Murashev ◽  
Alessandro Palermo ◽  
Kaveh Andisheh ◽  
John Wood ◽  
...  
Keyword(s):  

2013 ◽  
Vol 46 ◽  
pp. 234-246 ◽  
Author(s):  
Rolando Chacón ◽  
Enrique Mirambell ◽  
Esther Real

Sign in / Sign up

Export Citation Format

Share Document