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May 26, 2026Buildings0 citationsOpen Access

Fragility Analysis of RC Frames Accounting for In-Plan Irregularity Using Artificially Introduced Incremental Eccentricity

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AMA. MessaoudiMAMahmoud Abd-ElwahabHMHossameldeen Mohamed

Key Points

  • This study examines how in-plan irregularity and eccentricity affect the seismic performance of reinforced concrete buildings.
  • Developed 3D models of RC buildings (4 and 6 storeys) with moment-resisting frames in OpenSees.
  • Introduced eccentricities by shifting lumped mass without altering structural configurations.
  • Conducted nonlinear incremental dynamic analysis (IDA) using 40 ground motion records under bidirectional excitation.
  • Increased CM–CR eccentricity amplifies inter-storey drift demands and raises damage probabilities due to torsional stresses.
  • Eccentricity aligns with lower stiffness directs heightened severe damage impacts, particularly in taller buildings.
  • Eccentricity in the stiffer direction has limited effects on severe damage states.

Abstract

Reinforced concrete (RC) buildings are the most common structural system in urbanising regions. In many cases, architectural constraints and uneven distribution of structural elements often create eccentricity between the centre of mass (CM) and the centre of rigidity (CR). This eccentricity may induce torsional effects during earthquakes that can significantly influence structural response and increase seismic vulnerability. This study investigates the impact of in-plan irregularity on the seismic performance of RC buildings using nonlinear numerical analyses. Three-dimensional models of four- and six-storey RC buildings with moment resisting frames were developed in OpenSees, where different levels of irregularity were introduced by artificially shifting the lumped mass to generate controlled eccentricities without modifying the structural configuration. Seismic performance was evaluated using nonlinear incremental dynamic analysis (IDA) based on forty ground motion records under bidirectional excitation. The results indicate that increasing CM–CR eccentricity amplifies inter-storey drift demands and elevates the probability of damage due to intensified torsional stresses. The adverse effect is most pronounced when eccentricity aligns with the direction of lower stiffness, whereas eccentricity in the stiffer direction has a limited impact on severe damage states, particularly for taller buildings. These findings provide valuable insights for risk-informed assessment, retrofitting, and prioritisation of existing plan-irregular RC buildings.

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Cite This Study

Messaoudi et al. (2026) studied this question.

synapsesocial.com/papers/6a153a88b5d9c58d83e8d188https://doi.org/10.3390/buildings16112086
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