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February 27, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Short-term performance optimization of steel fiber-reinforced concrete for roadway support

XXXiaowen XuJCJ.-S. ChenYZYonggang Zhang

Key Points

  • This research aims to optimize short-term performance indicators for steel fiber-reinforced concrete used in roadway supports.
  • Investigated effects of different accelerator dosages and support thickness on SFRC performance.
  • Conducted experiments at 4 hours and 7 hours after mining to assess performance.
  • Prepared lab specimens with 5%, 7.5%, and 10% accelerator dosages and measured mechanical properties.
  • Performed numerical simulations to evaluate key stress and displacement metrics for varying support thicknesses.
  • Lower accelerator dosages and greater support thickness improved compressive strength and shear resistance.
  • A 5% accelerator dosage with a 100 mm thickness was identified as the optimal configuration for performance.
  • Support thickness was the most significant factor affecting SFRC support effectiveness.

Abstract

Introduction Steel fiber-reinforced concrete(SFRC) is widely used to mitigate early instability during mining because of its excellent toughness and crack resistance. However, its rapid early strength development requires chemical accelerators. Short-term support performance also depends on support thickness. Methods This study investigated the effects of accelerator dosage and support thickness on short-term SFRC performance using a 1363-m-level transport roadway in an iron ore mine in Yunnan Province as a case study. The analysis focused on two critical short-term time points-4 h and 7 h after mining-to identify the optimal support parameters. Laboratory specimens were prepared with accelerator dosages of 5%, 7.5% and 10%. Mechanical properties were measured at 4 and 7 h of curing. Numerical simulations evaluated displacement, maximum principal stress,and plastic zone development for SFRC supports of 30 mm, 60 mm, and 100 mm thicknesses at 4 and 7 h. Results The results indicated that decreasing accelerator dosage and extending curing age increase compressive strength and shear resistance but reduce elastic modulus. A lower accelerator dosage and greater support thickness reduced roadway displacement, plastic zone volume, and maximum principal stress. Support thickness was the dominant factor influencing SFRC support effectiveness. The optimal SFRC configuration was 5% accelerator dosage and a 100 mm support thickness. Discussion Field measurements confirmed that sidewall displacements stabilized at approximately 25 mm. This outcome indicated satisfactory performance of the adopted support system. These findings provide a scientific for optimizing short-term mechanical parameters of SFRC roadway supports.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69a1344fed1d949a99abe10ehttps://doi.org/10.3389/fmats.2026.1788884
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Also Consider

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

  1. 1Case study on the secondary support time and optimization of combined support for a roadway under high in-situ stress2024 · 15 citations
  2. 2Study on optimization and field application of static and dynamic mechanical properties of different steel fiber reinforced concrete2026
  3. 3Steel Fiber Reinforced Concrete for Underground Infrastructure Constructions - Case Studies2024
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  5. 5Autogenous Shrinkage and Basic Creep in Self-Consolidating Steel–Fiber Reinforced Concrete: From 1.5 Year Experimental Data to Predictive Models2026