Effects of near-fault earthquakes on existing bridge performances

被引:0
作者
Giovanni Falsone
Antonino Recupero
Nino Spinella
机构
[1] University of Messina,Department of Engineering
来源
Journal of Civil Structural Health Monitoring | 2020年 / 10卷
关键词
Seismic analysis of bridges; Vertical seismic component; Near-fault earthquakes;
D O I
暂无
中图分类号
学科分类号
摘要
The vertical component of seismic acceleration, often overlooked in ordinary structures, plays a role of primary importance in the case of bridges and viaducts. In particular, it induces both the appearance of uncommon stress conditions on vertical structures, and in some cases, it is a really important factor for bearing device capacity of girders. In fact, seismic excitations may give rise to great relative displacement between deck and piers or abutment in bridges. Among many structural damages of bridges during past earthquakes, the unseating failure is one of the most severe and recurring damages of girder bridges. When relative displacements exceed a pre-assigned seating length, the unseating of span will then take place. Therefore, for seismic design of new bridges or for a check of existing bridge, to take into account the vertical component due to seismic acceleration is an important issue. This paper presents a numerical analyses about damage effects of near-fault seismic events on existing bridge performances. The near-fault earthquakes are characterised by own some fundamental characteristics, such as forward-directivity phenomena, relatively high acceleration amplitudes and elastic response spectra, which are very different with respect to the reference ones defined in the codes. With this background, the purpose of this paper is to highlight the role of this kind of analysis of understanding the response behavior of girder bridges subjected to near-fault earthquakes. Furthermore, a case study and parameter studies are performed to evaluate its effectiveness in preventing bridge spans from unseating failure and protecting the piers and the abutment of bridges from damage.
引用
收藏
页码:165 / 176
页数:11
相关论文
共 49 条
[1]  
Recupero A(2014)Increasing the capacity of existing bridges by using unbonded prestressing technology: a case study Adv Civ Eng 13 1795-1807
[2]  
Spinella N(2015)Shear strength degradation due to flexural ductility demand in circular RC columns Bull Earthq Eng 114 298-312
[3]  
Colajanni P(2018)Nonlinear seismic analysis of a high-pier, long-span, continuous RC frame bridge under spatially variable ground motions Soil Dyn Earthq Eng 115 281-290
[4]  
Scilipoti CD(2018)Effects of vertical ground motions on seismic vulnerabilities of a continuous track-bridge system of high-speed railway Soil Dyn Earthq Eng 132 29-43
[5]  
Colajanni P(2017)Incremental dynamic analysis with multi-modes for seismic performance evaluation of RC bridges Eng Struct 68 199-222
[6]  
Recupero A(1987)Modification of empirical strong ground motion attenuation relations to include the amplitude and duration effects of rupture directivity Seismol Res Lett 24 815-828
[7]  
Spinella N(2004)Characterization of forward-directivity ground motions in the near-fault region Soil Dyn Earthq Eng 30 536-546
[8]  
Li X(2010)Study on elastic response of structures to near-fault ground motions through record decomposition Soil Dyn Earthq Eng 137 201-212
[9]  
Li ZX(2003)Magnitude scaling of the near fault rupture directivity pulse Phys Earth Planet Inter 1 121-155
[10]  
Crewe AJ(1997)Procedure and spectra for analysis of RC structures subjected to strong vertical earthquake loads J Earthq Eng 99 287-303