PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 23, 2026Proceedings of the Institution of Civil Engineers - Structures and Buildings1 citations

Seismic performance of reinforced concrete column section with crimped steel fibre: a parametric study

View Full Paper
SSShashi Shekhar SinghAKAman KumarLMLaxmi Kant Mishra

Key Points

  • The study aims to evaluate the influence of crimped steel fibres on the seismic performance of reinforced concrete columns.
  • Developed non-linear Pu–Mu interaction curves for reinforced concrete columns using SAP2000 software.
  • Examined effects of varying fibre content, aspect ratios, and concrete grades on structural capacity.
  • Applied fibre-dependent non-linear material models for comprehensive analysis.
  • Curvature ductility improved by up to 99.78% with crimped steel fibres.
  • Ultimate moment capacity increased by up to 36.50%.
  • Plastic rotation enhanced by up to 163.45%, indicating a significant impact on seismic behavior.

Abstract

The incorporation of fibres into the concrete matrix enhances its compressive stress–strain characteristics, improving the capacity of structural elements and overall seismic performance. While past studies have examined fibre effects at the material and curvature levels, the combined influence of fibre content, aspect ratio and concrete grade remains underexplored, and Indian seismic codes lack clear guidelines for fibre-reinforced concrete (FRC). This study presents the first development of fully non-linear Pu–Mu interaction curves for reinforced concrete columns reinforced with crimped steel fibres (CSFs), generated through validated sectional analysis in the SAP2000 software program. Using fibre-dependent non-linear material models, the study systematically evaluates varying fibre contents (0.25–1.50%), aspect ratios (55 and 82) and concrete grades (M20–M40), quantifying improvements in axial–flexural capacity. Results indicate that CSF significantly enhances curvature ductility (up to 99.78%), ultimate moment capacity (up to 36.50%), plastic rotation (up to 163.45%) and overall Pu–Mu interaction behaviour, highlighting its potential as a key structural material. These findings provide a foundation for incorporating FRC into Indian seismic design codes, enabling performance-driven, seismic-resistant design strategies.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Singh et al. (2026) studied this question.

synapsesocial.com/papers/69e9ba6b85696592c86ec8f3https://doi.org/10.1680/jstbu.25.00097
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Advancing Hybrid Fiber-Reinforced Concrete: Performance, Crack Resistance Mechanism, and Future Innovations2025 · 92 citations
  2. 2Tensile Mechanical and Stress-Strain Behavior of Recycling Polypropylene Fiber Recycled Coarse Aggregate Concrete2024 · 4 citations
  3. 3Stress–strain curves for steel-fiber reinforced concrete under compression1999 · 571 citations
  4. 4Formula to identify the Influence of steel fibres on the mechanical properties of HPC2020 · 6 citations
  5. 5Synergistic Effects of Polypropylene Fibers and Silica Fume on Structural Lightweight Concrete: Analysis of Workability, Thermal Conductivity, and Strength Properties2024 · 39 citations