Eine Plattform für die Wissenschaft: Bauingenieurwesen, Architektur und Urbanistik
Accuracy of nonlinear static procedures for the seismic assessment of shear critical structures
The nonlinear behavior of reinforced concrete (RC) members represents a key issue in the seismic performance assessment of structures. Many structures constructed in the 1980s or earlier were designed based on force limits; thus they often exhibit brittle failure modes, strength and stiffness degradation, and severe pinching effects. Field surveys and experimental evidence have demonstrated that such inelastic responses affect the global behavior of RC structural systems. Efforts have been made to consider the degrading stiffness and strength in the simplified nonlinear static procedures commonly adopted by practitioners. This paper investigates the accuracy of such procedures for the seismic performance assessment of RC structural systems. Refined finite element models of a shear critical bridge bent and a flexure‐critical bridge pier are used as reference models. The numerical models are validated against experimental results and used to evaluate the inelastic dynamic response of the structures subjected to earthquake ground motions with increasing amplitude. The maximum response from the refined numerical models is compared against the results from the simplified static procedures, namely modified capacity spectrum method and coefficient method in FEMA‐440. The accuracy of the static procedures in estimating the displacement demand of a flexure‐critical system and shear‐critical system is discussed in detail. Copyright © 2015 John Wiley & Sons, Ltd.
Accuracy of nonlinear static procedures for the seismic assessment of shear critical structures
The nonlinear behavior of reinforced concrete (RC) members represents a key issue in the seismic performance assessment of structures. Many structures constructed in the 1980s or earlier were designed based on force limits; thus they often exhibit brittle failure modes, strength and stiffness degradation, and severe pinching effects. Field surveys and experimental evidence have demonstrated that such inelastic responses affect the global behavior of RC structural systems. Efforts have been made to consider the degrading stiffness and strength in the simplified nonlinear static procedures commonly adopted by practitioners. This paper investigates the accuracy of such procedures for the seismic performance assessment of RC structural systems. Refined finite element models of a shear critical bridge bent and a flexure‐critical bridge pier are used as reference models. The numerical models are validated against experimental results and used to evaluate the inelastic dynamic response of the structures subjected to earthquake ground motions with increasing amplitude. The maximum response from the refined numerical models is compared against the results from the simplified static procedures, namely modified capacity spectrum method and coefficient method in FEMA‐440. The accuracy of the static procedures in estimating the displacement demand of a flexure‐critical system and shear‐critical system is discussed in detail. Copyright © 2015 John Wiley & Sons, Ltd.
Accuracy of nonlinear static procedures for the seismic assessment of shear critical structures
Del Vecchio, Ciro (Autor:in) / Kwon, Oh‐Sung (Autor:in) / Di Sarno, Luigi (Autor:in) / Prota, Andrea (Autor:in)
Earthquake Engineering & Structural Dynamics ; 44 ; 1581-1600
01.08.2015
20 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
Assessment of Nonlinear Static Analysis Procedures for Seismic Evaluation of Building Structures
British Library Conference Proceedings | 2002
|Assessment of current nonlinear static procedures for seismic evaluation of buildings
Online Contents | 2007
|Seismic Evaluation of Steel Moment Frames and Shear Walls Using Nonlinear Static Analysis Procedures
British Library Conference Proceedings | 2011
|