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Journal of Constructional Steel Research· 2026Q1

Effect of localized damage on lateral–torsional buckling capacity of continuous steel I-beams

Nguyen Duc Binh, T.Q. Minh, Isabel Brito Valente, Bui Tien Thanh et al.

Short summary

Localized damage in continuous steel I-beams can reduce their lateral-torsional buckling capacity by up to 42%, with the most significant reductions occurring in high-bending-moment regions and for shorter, stockier beams.

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Key points

  • Localized damage in continuous steel I-beams can reduce lateral-torsional buckling (LTB) capacity by up to 42%.
  • Defects in high-bending-moment regions have the most significant impact on LTB capacity.
  • Shorter, stockier beams experience capacity reduction dominated by cross-sectional yielding (approx. 42%), while slender beams are less sensitive due to global elastic buckling.
  • Simplified design formulas for the load reduction factor β L are proposed based on a lower-bound envelope approach.

AI-generated from the title and abstract; the full text is not read.

Abstract

This paper investigates the Lateral-Torsional Buckling (LTB) resistance of continuous hot-rolled steel I-beams with localized cross-sectional damage. Due to the alternating sagging and hogging moment regions, continuous beams exhibit spatially varying compression flanges and buckling mechanisms that differ fundamentally from those of simply supported beams. An integrated experimental-numerical program was conducted. Six continuous beam specimens with bottom flange loss, web openings, and combined defects were tested under four-point bending. Initial geometric imperfections were measured to establish maximum out-of-straightness amplitudes, which were subsequently used to scale the first elastic buckling mode shape in the finite element models. A large-scale parametric study involving numerous simulations was then developed to assess the effects of damage location, beam slenderness, damage severity, and sectional thickness reduction. The results reveal that the beam's capacity is most sensitive to defects located in high-bending-moment regions. A significant “slenderness convergence effect” was observed, where short beams exhibited severe capacity reduction (approximately 42%) dominated by cross-sectional yielding, while slender beams were less sensitive due to global elastic buckling governance. Based on these findings, simplified design formulas for the load reduction factor β L are proposed following a lower-bound envelope approach. This method enables the rapid and safe estimation of the residual capacity of locally damaged continuous beams, a scenario that is not currently addressed in existing design standards.

The authors' abstract, as published at the source. Journal of Constructional Steel Research, 2026 · DOI ↗

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Field: Civil and Structural Engineering

Civil and Structural EngineeringEngineering