Progressive collapse fragility models of European reinforced concrete framed buildings based on pushdown analysis

被引:80
作者
Brunesi, Emanuele [1 ]
Parisi, Fulvio [2 ]
机构
[1] European Ctr Training & Res Earthquake Engn, EUCENTRE, Via Ferrara 1, I-27100 Pavia, Italy
[2] Univ Naples Federico II, Dept Struct Engn & Architecture, Via Claudio 21, I-80125 Naples, Italy
关键词
Reinforced concrete buildings; Structural robustness; Progressive collapse; Fiber modeling; Pushdown analysis; Fragility assessment; Dynamic amplification factor; TO-COLUMN CONNECTIONS; MULTISTORY BUILDINGS; SHEAR-STRENGTH; RC FRAMES; RESISTANCE; VULNERABILITY; DESIGN; PERFORMANCE; REMOVAL; ROBUSTNESS;
D O I
10.1016/j.engstruct.2017.09.043
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Structural safety for extreme loads that may cause local damage to single primary components or even the progressive collapse of the structure has been probabilistically assessed in a few studies, hence neglecting uncertainties in loads and system capacity. As such, this paper moves from a deterministic to a probabilistic framework, proposing new progressive collapse fragility models based on pushdown analysis of low-rise, reinforced concrete framed bare structures. Two building classes representative of structures designed for either gravity loads or earthquake resistance in accordance with current European codes were investigated. Monte Carlo simulation was used to generate random realizations of 2D and 3D structural models. Fiber-based finite element models were developed within an open source platform. The primary output consisted of fragility functions for each damage state of interest, given the loss of corner column at the ground floor. The fragility models were compared to those derived through incremental dynamic analysis (IDA) to assess the inaccuracy of progressive collapse fragility functions derived through pushdown analysis. Load capacity predictions provided by those analysis methods were used to develop regression models for a quick estimation of dynamic amplification factor at a given displacement/drift level. The analysis results show a significant influence of both seismic design and secondary beams on robustness of the case-study building classes. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:579 / 596
页数:18
相关论文
共 78 条
[11]   FORMULATIONS FOR PROBABILITY OF PROGRESSIVE COLLAPSE [J].
BENNETT, RM .
STRUCTURAL SAFETY, 1988, 5 (01) :67-77
[12]   Simplified pushover-based vulnerability analysis for large-scale assessment of RC buildings [J].
Borzi, Barbara ;
Pinho, Rui ;
Crowley, Helen .
ENGINEERING STRUCTURES, 2008, 30 (03) :804-820
[13]   Progressive collapse fragility of reinforced concrete framed structures through incremental dynamic analysis [J].
Brunesi, E. ;
Nascimbene, R. ;
Parisi, F. ;
Augenti, N. .
ENGINEERING STRUCTURES, 2015, 104 :65-79
[14]   Numerical web-shear strength assessment of precast prestressed hollow core slab units [J].
Brunesi, E. ;
Nascimbene, R. .
ENGINEERING STRUCTURES, 2015, 102 :13-30
[15]   Evaluation of the shear capacity of precast-prestressed hollow core slabs: numerical and experimental comparisons [J].
Brunesi, E. ;
Bolognini, D. ;
Nascimbene, R. .
MATERIALS AND STRUCTURES, 2015, 48 (05) :1503-1521
[16]   Seismic response of MRFs with partially-restrained bolted beam-to-column connections through FE analyses [J].
Brunesi, E. ;
Nascimbene, R. ;
Rassati, G. A. .
JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2015, 107 :37-49
[17]   Extreme response of reinforced concrete buildings through fiber force-based finite element analysis [J].
Brunesi, E. ;
Nascimbene, R. .
ENGINEERING STRUCTURES, 2014, 69 :206-215
[18]   Response of partially-restrained bolted beam-to-column connections under cyclic loads [J].
Brunesi, E. ;
Nascimbene, R. ;
Rassati, G. A. .
JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2014, 97 :24-38
[19]  
Calvi G.M., 1999, J EARTHQ ENG, V3, P411, DOI [10.1080/13632469909350353, DOI 10.1080/13632469909350353]
[20]  
CEN European Committee for Standardization, 2004, 199815 EN CEN EU 1 5