Proposal of a probabilistic assessment of structural collapse concomitantly subject to earthquake and gas explosion

Gholamreza ABDOLLAHZADEH, Hadi FAGHIHMALEKI

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Front. Struct. Civ. Eng. ›› 2018, Vol. 12 ›› Issue (3) : 425-437. DOI: 10.1007/s11709-017-0427-5
Research Article
Research Article

Proposal of a probabilistic assessment of structural collapse concomitantly subject to earthquake and gas explosion

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Abstract

In recent decades, many public buildings, located in seismic-prone residential areas, had to grapple with abnormal loads against which the structures were unguarded. In this piece of research, an ordinary three dimensional reinforced concrete building is selected as case study. The building is located in an earthquake-prone region; however, it is designed according to seismic building codes. Yet, it is not shielded against abnormal loads, such as blasts. It is assumed that the building suffers a blast load, due to mechanical/thermal installation failure during or after intense seismic oscillations. These two critical incidents are regarded codependent and compatible. So the researchers developed scenarios and tried to assess different probabilities for each scenario and carried out an analysis to ensure if progressive collapse had set in or not. In the first step, two analysis models were used for each scenario; a non-linear dynamic time history analysis and a blast local dynamic analysis. In the second step, having the structural destructions of the first step in view, a pushdown analysis was carried out to determine the severity of progressive collapse and assess building robustness. Finally, the annual probability of structural collapse under simultaneous earthquake and blast loads was estimated and offered.

Keywords

gas blast / pushdown analysis / progressive collapse / annual probability of structural collapse / 3D model of structure

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Gholamreza ABDOLLAHZADEH, Hadi FAGHIHMALEKI. Proposal of a probabilistic assessment of structural collapse concomitantly subject to earthquake and gas explosion. Front. Struct. Civ. Eng., 2018, 12(3): 425‒437 https://doi.org/10.1007/s11709-017-0427-5

References

[1]
Rong H C, Li B. Probabilistic response evaluation for RC flexural members subjected to blast loadings. Structural Safety, 2007, 29(2): 146–163
CrossRef Google scholar
[2]
Stewart M G, Netherton M D. Security risks and probabilistic risk assessment of glazing subject to explosive blast loading. Reliability Engineering & System Safety, 2008, 93(4): 627–638
CrossRef Google scholar
[3]
Cizelj L, Leskovar M, Čepin M, Mavko B. A method for rapid vulnerability assessment of structures loaded by outside blasts. Nuclear Engineering and Design, 2009, 239(9): 1641–1646
CrossRef Google scholar
[4]
Shi Y, Li Z X, Hao H. A new method for progressive collapse analysis of RC frames under blast loading. Engineering Structures, 2010, 32(6): 1691–1703
CrossRef Google scholar
[5]
Cullis I G, Schofield J, Whitby A. Assessment of blast loading effects—Types of explosion and loading effects. International Journal of Pressure Vessels and Piping, 2010, 87(9): 493–503
[6]
Fu F. Dynamic response and robustness of tall buildings under blast loading. Constructional Steel Research, 2013, 80: 299–307
CrossRef Google scholar
[7]
Parisi F, Augenti N. Influence of seismic design criteria on blast resistance of RC framed buildings: A case study. Engineering Structures, 2012, 44: 78–93
CrossRef Google scholar
[8]
Asprone D, Jalayer F, Prota A, Manfredi G. Proposal of a probabilistic model for multi-hazard risk assessment of structures in seismic zones subjected to blast for the limit state of collapse. Structural Safety, 2010, 32(1): 25–34
CrossRef Google scholar
[9]
Ellingwood B R. Mitigating risk from abnormal loads and progressive collapse. Perform Construct Facil, 2006, 20(4): 315–323
CrossRef Google scholar
[10]
Talebi H, Silani M, Rabczuk T. Concurrent multiscale modelling of three dimensional crack and dislocation propagation. Advances in Engineering Software, 2015, 80: 82–92
CrossRef Google scholar
[11]
Talebi H, Silani M, Bordas S, Kerfriden P, Rabczuk T. A computational library for multiscale modelling of material failure. Computational Mechanics, 2014, 53(5): 1047–1071
CrossRef Google scholar
[12]
Talebi H, Silani M, Bordas S P A, Kerfriden P, Rabczuk T. Molecular dynamics/XFEM coupling by a three-dimensional extended bridging domain with applications to dynamic brittle fracture. International Journal for Multiscale Computational Engineering, 2013, 11(6): 527–541
CrossRef Google scholar
[13]
Ghorashi S, Valizadeh N, Mohammadi S, Rabczuk T. T-spline based XIGA for fracture analysis of orthotropic media. Computers & Structures, 2015, 147: 138–146
CrossRef Google scholar
[14]
Areias P M A, Rabczuk T, Camanho P P. Finite strain fracture of 2D problems with injected anisotropic softening elements. Theoretical and Applied Fracture Mechanics, 2014, 72: 50–63
CrossRef Google scholar
[15]
Dobashi R, Kawamura S, Kuwana K, Nakayama Y. Consequence analysis of blast wave from accidental gas explosions. Proceedings of the Combustion Institute, 2011, 33(2): 2295–2301
CrossRef Google scholar
[16]
Rabczuk T, Areias P M A, Belytschko T. A meshfree thin shell method for nonlinear dynamic fracture. International Journal for Numerical Methods in Engineering, 2007, 72(5): 524–548
CrossRef Google scholar
[17]
Lea C J, Ledin H S. A Review of the State-of-the-Art in Gas Explosion Modelling. Harpur Hill, Buxton: Health and Safety Laboratory, Fire and Explosion Group, 2002
[18]
Areias P, Rabczuk T, Dias-da-Costa D. Element-wise fracture algorithm based on rotation of edges. Engineering Fracture Mechanics, 2013, 110: 113–137
CrossRef Google scholar
[19]
Middha P, Hansen O R, Storvik I E. Validation of CFD-model for hydrogen dispersion. Journal of Loss Prevention in the Process Industries, 2009, 22(6): 1034–1038
CrossRef Google scholar
[20]
Bradley D, Mitcheson A. Mathematical solutions for explosions in spherical vessels. Combustion and Flame, 1976, 26: 201–217
CrossRef Google scholar
[21]
Dobashi R. Experimental study on gas explosion behavior in enclosure. Journal of Loss Prevention in the Process Industries, 1997, 10(2): 83–89
CrossRef Google scholar
[22]
Zalosh R G. Explosion Protection, SFPE Handbook of Fire Protection Engineering, Chapter 3‒16, 1995
[23]
Zhuang X, Zhu H, Augarde C. An improved meshless Shepard and least square method possessing the delta property and requiring no singular weight function. Computational Mechanics, 2014, 53(2): 343–357
CrossRef Google scholar
[24]
Amiri F, Milan D, Shen Y, Rabczuk T, Arroyo M. Phase-field modeling of fracture in linear thin shells, Theoretical and Applied Fracture Mechanics, 2014, 69, 102–109
[25]
Alashker Y, Li H, El-Tawil S. Approximations in progressive collapse modeling. Structure Engineering, 2011, 137(9): 914–924
CrossRef Google scholar
[26]
Areias P, Rabczuk T. Finite strain fracture of plates and shells with configurational forces and edge rotation. International Journal for Numerical Methods in Engineering, 2013, 94(12): 1099–1122
CrossRef Google scholar
[27]
Amiri F, Anitescu C, Arroyo M, Bordas S, Rabczuk T. XLME interpolants, a seamless bridge between XFEM and enriched meshless methods. Computational Mechanics, 2014, 53(1): 45–57
CrossRef Google scholar
[28]
Cai Y, Zhuang X, Zhu H. A generalized and efficient method for finite cover generation in the numerical manifold method. International Journal of Computational Methods, 2013, 10(5): 1350028
CrossRef Google scholar
[29]
Tsai M H, Lin B H. Investigation of progressive collapse resistance and inelastic response for an earthquake-resistant RC building subjected to column failure. Engineering Structures, 2008, 30(12): 3619–3628
CrossRef Google scholar
[30]
Rabczuk T, Zi G, Bordas S, Nguyen-Xuan H. A geometrically non-linear three-dimensional cohesive crack method for reinforced concrete structures. Engineering Fracture Mechanics, 2008, 75(16): 4740–4758
CrossRef Google scholar
[31]
Zhuang X, Augarde C E, Mathisen K M. Fracture modeling using meshless methods and level sets in 3D: Framework and modeling. International Journal for Numerical Methods in Engineering, 2012, 92(11): 969–998
CrossRef Google scholar
[32]
General Services Administration (GSA). Progressive collapse analysis and design guidelines for new federal office buildings and major modernization projects GSA. 2003
[33]
US Department of Defence. Design of buildings to resist progressive collapse, Unified Facilities Criteria, UFC 4-023-03. 2009
[34]
Federal Emergency Management Agency. Guidelines for seismic rehabilitation of buildings, FEMA 273, NEHRP. 1997
[35]
Comité Européen de Normalisation. Design of structures for earthquake resistance, Eurocode 8. 2005
[36]
Next Generation Attenuation (NGA). Project strong motion database. 2005
[37]
Seismosoft Company. Seismosignal earthquake engineering software solutions, Version 5.1.0. 2012
[38]
Trifunac M D, Brady A G. A study on duration of strong earthquake ground motio. Bulletin of the Seismological Society of America, 1975, 65: 581–626
[39]
Ruth P, Marchand K A, Williamson E B. Static equivalency in progressive collapse alternate path analysis: Reducing conservatism while retaining structural integrity. Perform Construct Facil, 2006, 20(4): 349–364
CrossRef Google scholar
[40]
SAP. 2000. Structural analysis program. Version 18. California: Computers and Structures, Inc. 2015
[41]
Zhuang X, Huang R, Zhu H, Askes H, Mathisen K. A new and simple locking-free triangular thick plate element using independent shear degrees of freedom. Finite Elements in Analysis and Design, 2013, 75: 1–7
CrossRef Google scholar
[42]
Zhuang X, Augarde C, Mathisen K. Fracture modelling using meshless methods and level sets in 3D: Framework and modelling. International Journal for Numerical Methods in Engineering, 2012, 92(11): 969–998
CrossRef Google scholar
[43]
Abdollahzadeh G R, Faghihmaleki H. A method to evaluate the risk-based robustness index in blast-influenced structures. Earthquakes and Structures, 2017, 12(1): 47–54
CrossRef Google scholar
[44]
Abdollahzadeh G R, Faghihmaleki H. Seismic-explosion risk-based robustness index of structures. International Journal of Damage Mechanics, 2016, doi: 10.1177/1056789516651919
[45]
Faghihmaleki H, Najafi E K, Aini A H. Seismic rehabilitation effect in a steel moment frame subjected to tow critical loads. International Journal of Structural Integrity, 2017, 8(1): 1–11
CrossRef Google scholar
[46]
Abdollahzadeh G R, Faghihmaleki H. Effect of seismic improvement techniques on a structure in seismic-explosive probabilistic two-hazard risk. International Journal of Structural Engineering, 2016, 7(3): 314–331
CrossRef Google scholar
[47]
Faghihmaleki H, Nejati F, Roshan A M, Motlagh Y B. An evaluation of multi-hazard risk subjected to blast and earthquake loads in RC moment frame with shear wall. Journal of Engineering Science and Technology, 2017, 12(3): 636–647
[48]
Khaloo A, Nozhati S, Masoomi H, Faghihmaleki H. Influence of earthquake record truncation on fragility curves of RC frames with different damage indices. Journal of Building Engineering, 2016, 7: 23–30
CrossRef Google scholar
[49]
Abdollahzadeh G R, Faghihmaleki H, Esmaili H. Comparing hysteretic energy and inter-story drift in steel frames with V-shaped brace under near and far fault earthquakes. Alexandria Engineering Journal, 2016
CrossRef Google scholar
[50]
Building and housing research center. Iranian code of practice for seismic resistant design of buildings, 4th revision, Standard No. 2800. 2013
[51]
Asprone D, Jalayer F, Prota A, Manfredi G. Probabilistic assessment of blast-induced progressive collapse in a seismic retrofitted RC structure. In: The 14th World Conference on Earthquake Engineering, Beijing, 2008
[52]
Statistical Institute of Pooyesh. The major damages in the building structures due to a strong earthquake. Report No. 93-411. 2012 (Persian)
[53]
Continuation of assistance to the DPC for the completion and management of the seismic hazard map provided by ordinance PCM 3274 and planning for future developments. Project INGV-DPC. S1. 2007

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