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December 6, 2025Journal of Structural Fire Engineering3 citations

Fire performance and design of LSF wall panels with 3D printed concrete and steel lipped channel sections

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SPSunday O. PopoolaKTKajaharan Thirunavukkarasu

Key Points

  • Fire resistance increased significantly with 3D printed concrete, showing multi-hour endurance under testing conditions.
  • Finite-element models assessed various configurations, achieving high predictive accuracy with R2 values up to 0.992.
  • Replacing plasterboard with 3D printed concrete improved insulation and load bearing fire ratings, exceeding traditional limits.
  • Using rockwool further augmented fire resistance, resulting in structural integrity during prolonged fire exposure.

Abstract

Purpose Conventional plasterboard linings impose a hard limit on the fire resistance of light steel frame (LSF) walls because gypsum rapidly degrades at high temperature. This study analyses whether substituting those linings with 3D-printed concrete (3DPC) can enhance load bearing fire rating (LFR) and insulation fire rating (IFR) under both standard and severe hydrocarbon fire exposures. Design/methodology/approach Eighty-eight finite-element models simulated LSF walls combining steel lipped channels and 3DPC facings. Parameters varied were 3DPC thickness (25–100 mm), cavity-insulation type (rockwool or glass fibre) and infill ratio (20–100%). Critical outputs were time to reach steel temperatures of 320 °C, 490 °C and 640 °C (load ratios 0.6, 0.4, 0.2) and time to 160/200 °C on the unexposed face. Findings Replacing 25 mm panels (IFR = 18 min in hydrocarbon fire) with 100 mm 3DPC panels extended insulation fire resistance beyond the 240-min analysis window; under the standard curve, 50 mm panels already sustained the 0.2 load ratio for over four hours. Rockwool increased IFR by up to 55% and added more than 60 min to LFR. Regression models linking thickness, fill, fire severity and insulation type achieved R2 values to 0.992. Originality/value This is the first systematic investigation of 3DPC-LSF walls under both rapid-rise hydrocarbon and standard fires. It supplies design-ready regression models and shows that 3DPC walls = 50 mm, especially with rockwool, deliver multi-hour structural and insulation fire resistance, up to 50% higher than plasterboard, making them a viable, fire-robust alternative for fire-safe LSF construction. Highlights

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Cite This Study

Popoola et al. (2025) studied this question.

synapsesocial.com/papers/69337cefb3f947a0a125a4c3https://doi.org/10.1108/jsfe-06-2025-0025
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