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    An Explainable Numerical Procedure for the Seismic Fragility and Integrity Evaluation of Existing Reinforced Concrete Buildings

    Source: Journal of Structural Design and Construction Practice:;2025:;Volume ( 030 ):;issue: 003::page 04025054-1
    Author:
    Nirmalya Sarma Roy
    ,
    Subhrajit Dutta
    ,
    Satyabrata Choudhury
    DOI: 10.1061/JSDCCC.SCENG-1790
    Publisher: American Society of Civil Engineers
    Abstract: The present numerical scheme deals with the investigation related to seismic fragility and integrity of RC columns of residential buildings situated in high seismic vulnerable locations. An explainable and interpretable numerical procedure is presented to quantify the influence of column stiffness and demand–capacity ratio on seismic fragility and integrity of buildings to prognose damage scenarios in future earthquakes. Nonlinear dynamic analysis is conducted using 22 far-field ground motions following FEMA P695 standards. The analysis is performed in the longitudinal and transverse direction of a building, and story drift is evaluated for three damage levels (minor, moderate, and excessive) corresponding to performance objectives: immediate occupancy (IO), life safety (LS), and collapse prevention (CP), respectively. Incremental dynamic analysis (IDA) curves are subsequently generated using interstory drift ratio (IDR) as a demand parameter and site-specific peak ground acceleration as an intensity measure (IM). Fragility curves are further developed to relate IM to the probability of exceeding each damage level. Critical columns are identified based on exceeding a demand-to-capacity ratio (DCR) of 1, and their stiffness results are examined to understand potential damage scenarios. Finally, fragility curves for spectral accelerations (Sa) corresponding to IM are analyzed for design basis earthquake (DBE) and maximum considered earthquake (MCE) scenarios. This integrated approach provides a valuable understanding of the seismic fragility and integrity (in terms of both member and system failure probability) of a building under varying earthquake intensities. By analyzing critical columns and their stiffness results, potential damage scenarios may be recognized for future earthquakes. This study provides insights into the seismic behavior of RC framed building columns in high seismic zones. The methodology provides an explainable numerical procedure for evaluating the seismic fragility and integrity of a building and identifying potential damage types and locations for improved seismic design and retrofitting strategies to optimize the structural integrity.
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      An Explainable Numerical Procedure for the Seismic Fragility and Integrity Evaluation of Existing Reinforced Concrete Buildings

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4306654
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    contributor authorNirmalya Sarma Roy
    contributor authorSubhrajit Dutta
    contributor authorSatyabrata Choudhury
    date accessioned2025-08-17T22:14:24Z
    date available2025-08-17T22:14:24Z
    date copyright8/1/2025 12:00:00 AM
    date issued2025
    identifier otherJSDCCC.SCENG-1790.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4306654
    description abstractThe present numerical scheme deals with the investigation related to seismic fragility and integrity of RC columns of residential buildings situated in high seismic vulnerable locations. An explainable and interpretable numerical procedure is presented to quantify the influence of column stiffness and demand–capacity ratio on seismic fragility and integrity of buildings to prognose damage scenarios in future earthquakes. Nonlinear dynamic analysis is conducted using 22 far-field ground motions following FEMA P695 standards. The analysis is performed in the longitudinal and transverse direction of a building, and story drift is evaluated for three damage levels (minor, moderate, and excessive) corresponding to performance objectives: immediate occupancy (IO), life safety (LS), and collapse prevention (CP), respectively. Incremental dynamic analysis (IDA) curves are subsequently generated using interstory drift ratio (IDR) as a demand parameter and site-specific peak ground acceleration as an intensity measure (IM). Fragility curves are further developed to relate IM to the probability of exceeding each damage level. Critical columns are identified based on exceeding a demand-to-capacity ratio (DCR) of 1, and their stiffness results are examined to understand potential damage scenarios. Finally, fragility curves for spectral accelerations (Sa) corresponding to IM are analyzed for design basis earthquake (DBE) and maximum considered earthquake (MCE) scenarios. This integrated approach provides a valuable understanding of the seismic fragility and integrity (in terms of both member and system failure probability) of a building under varying earthquake intensities. By analyzing critical columns and their stiffness results, potential damage scenarios may be recognized for future earthquakes. This study provides insights into the seismic behavior of RC framed building columns in high seismic zones. The methodology provides an explainable numerical procedure for evaluating the seismic fragility and integrity of a building and identifying potential damage types and locations for improved seismic design and retrofitting strategies to optimize the structural integrity.
    publisherAmerican Society of Civil Engineers
    titleAn Explainable Numerical Procedure for the Seismic Fragility and Integrity Evaluation of Existing Reinforced Concrete Buildings
    typeJournal Article
    journal volume30
    journal issue3
    journal titleJournal of Structural Design and Construction Practice
    identifier doi10.1061/JSDCCC.SCENG-1790
    journal fristpage04025054-1
    journal lastpage04025054-14
    page14
    treeJournal of Structural Design and Construction Practice:;2025:;Volume ( 030 ):;issue: 003
    contenttypeFulltext
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