Site specific fragility modification factor for mid-rise RC buildings based on plastic energy dissipation

dc.contributor.authorMathews, M.
dc.contributor.authorJayalekshmi, B.R.
dc.contributor.authorVenkataramana, K.
dc.date.accessioned2026-02-03T13:21:12Z
dc.date.issued2024
dc.description.abstractThe performance of reinforced concrete buildings subjected to earthquake excitations depends on the structural behaviour of the superstructure as well as the type of foundation and the properties of soil on which the structure is founded. The consideration of the effects due to the interaction between the structure and soil-foundation alters the seismic response of reinforced concrete buildings subjected to earthquake motion. Evaluation of the structural response of buildings for quantitative assessment of the seismic fragility has been a demanding problem for the engineers. Present research deals with development of fragility curve for building specific vulnerability assessment based on different damage parameters considering the effect of soil-structure interaction. Incremental Dynamic Analysis of fixed base and flexible base RC building models founded on different soil conditions was conducted using finite element software. Three sets of fragility curves were developed with maximum roof displacement, inter storey drift and plastic energy dissipated as engineering demand parameters. The results indicated an increase in the likelihood of exceeding various damage limits by 10-40% for flexible base condition with soft soil profiles. Fragility curve based on energy dissipated showed a higher probability of exceedance for collapse prevention damage limit whereas for lower damage states, conventional methods showed higher probability of exceedance. With plastic energy dissipated as engineering demand parameter, it is possible to track down the intensity of earthquake at which the plastic deformation starts, thereby providing an accurate vulnerability assessment of the structure. Fragility modification factors that enable the transformation of existing fragility curves to account for Soil-Structure Interaction effects based on different damage measures are proposed for different soil conditions to facilitate a congenial vulnerability assessment for buildings with flexible base conditions. © 2024 Techno-Press, Ltd.
dc.identifier.citationEarthquake and Structures, 2024, 27, 4, pp. 331-344
dc.identifier.issn20927614
dc.identifier.urihttps://doi.org/10.12989/eas.2024.27.4.331
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/20881
dc.publisherTechno-Press
dc.subjectConcrete buildings
dc.subjectEarthquake effects
dc.subjectEarthquake engineering
dc.subjectSeismic response
dc.subjectTall buildings
dc.subjectEnergy
dc.subjectEnergy dissipated
dc.subjectFlexible base
dc.subjectFragility curves
dc.subjectIncremental dynamic analysis
dc.subjectModification factors
dc.subjectRC buildings
dc.subjectReinforced concrete buildings
dc.subjectSoil-structure interaction
dc.subjectVulnerability assessments
dc.subjectSoil structure interactions
dc.titleSite specific fragility modification factor for mid-rise RC buildings based on plastic energy dissipation

Files

Collections