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October 23, 2025Buildings2 citationsOpen Access

Effect of Fiber Type and Content on the Mechanical Properties of High-Performance Concrete Under Different Saturation Levels

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SBShuyu BaoSWShuangjie WangSWSheng Wang

Key Points

  • Findings demonstrate basalt fiber increases compressive strength, achieving an improvement of 10.66% in saturated conditions compared to glass fiber.
  • Experimental tests identified optimal fiber volumes for mechanical properties like compressive strength and fracture energy under various moisture states.
  • Analysis across three saturation levels—natural, dry, and water saturated—highlighted unique performance characteristics of basalt versus glass fibers.
  • Implications call for focused design strategies for fiber-reinforced concrete applications in wet environments, addressing strength requirements.

Abstract

This study investigates the static mechanical behavior of a novel eco-friendly high-performance concrete (HPC) reinforced with fibers under different moisture conditions, reflecting the humidity variations commonly encountered in engineering practice. Three saturation levels—natural, dry, and water saturated—were considered. The optimal dosages of basalt and glass fibers were first identified through tests in the natural state, and empirical relationships between fiber volume fraction, compressive strength, and fracture energy were established. Comparative experiments were then conducted at the optimal dosages under varying saturation conditions. Results show that basalt fiber provides superior compressive strength, exceeding that of glass fiber by 0.86% in the dry state and 10.66% in the saturated state. Conversely, glass fiber exhibits a greater enhancement in flexural strength, with improvements of 14.91% and 3.38% over basalt fiber under dry and saturated conditions, respectively. Although preliminary models were proposed to correlate fiber volume fraction with strength in dry and saturated environments, their predictive accuracy proved limited. Overall, the findings highlight the distinct reinforcing effects of basalt and glass fibers on HPC under different moisture conditions, offering guidance for the design and application of fiber-reinforced recycled concrete in humid service environments.

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Cite This Study

Bao et al. (2025) studied this question.

synapsesocial.com/papers/68f9d6583f3788722249274fhttps://doi.org/10.3390/buildings15203805
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