Static Mechanical Properties of Granite-Basalt Fiber Reinforced Concrete Composites after High-Temperature Exposure

LIU Lei, ZHONG Kang-jie, LI Zhi-da, WU Jun, GUO Hao, ZUO Xu-chao

Journal of Changjiang River Scientific Research Institute ›› 2026, Vol. 43 ›› Issue (7) : 167-174.

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Journal of Changjiang River Scientific Research Institute ›› 2026, Vol. 43 ›› Issue (7) : 167-174. DOI: 10.11988/ckyyb.20250515
Rock-Soil Engineering

Static Mechanical Properties of Granite-Basalt Fiber Reinforced Concrete Composites after High-Temperature Exposure

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Abstract

[Objective] While the mechanical properties of rock-concrete composites and basalt fiber-reinforced concrete have been widely studied, research on their combined performance after high-temperature exposure remains limited. This study investigates the use of basalt fibers to enhance the high-temperature performance of granite-concrete composites, aiming to evaluate their efficacy in mitigating thermal damage. [Method] Granite, plain concrete, and granite-basalt fiber concrete (GBFC) composites with four fiber volume fractions (0%, 0.1%, 0.2%, and 0.3%) were tested. Following high-temperature treatments at ambient temperature and 200 ℃, 400 ℃, and 600 ℃, static uniaxial compression and splitting tensile tests were conducted to evaluate compressive strength, tensile strength, failure modes, and damage factors. Scanning electron microscopy (SEM) was also employed to analyze microstructural evolution. [Result] (1) The composites exhibited continuous medium mechanical behavior, characterized by plastic failure under uniaxial compression and brittle failure during splitting. Their compressive and tensile strengths fell between those of pure granite and concrete, trending closer toward the concrete values. (2) Basalt fiber incorporation improved both strength metrics and failure modes at elevated temperatures, with a 0.2% fiber content identified as optimal. (3) The damage factor increased progressively with temperature; specifically, the GBFC damage factors were 0.103 5 at 200 ℃, 0.339 1 at 400 ℃, and 0.702 7 at 600 ℃, indicating severe structural degradation at the highest temperature. (4) SEM analysis revealed that uniaxial compression primarily damaged the concrete matrix, while the interface and granite remained relatively intact. High-temperature treatment exacerbated concrete deterioration but had minimal impact on the interface and granite. Basalt fibers acted as bridging and crack-arresting agents within the concrete matrix, effectively mitigating crack initiation and propagation when added in appropriate amounts. [Conclusion] These findings provide valuable references for understanding composite mechanical properties, optimizing tunnel construction, and guiding post-fire evaluation and repair strategies for tunnel infrastructure.

Key words

granite-concrete composite / basalt fibers / high temperature damage factor / static mechanical property / microstructure

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LIU Lei , ZHONG Kang-jie , LI Zhi-da , et al . Static Mechanical Properties of Granite-Basalt Fiber Reinforced Concrete Composites after High-Temperature Exposure[J]. Journal of Changjiang River Scientific Research Institute. 2026, 43(7): 167-174 https://doi.org/10.11988/ckyyb.20250515

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