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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (7): 2250-2259.DOI: 10.16552/j.cnki.issn1001-1625.2026.0059

• 水泥混凝土 • 上一篇    下一篇

盐冻-干湿循环下钢纤维混凝土耐久性研究

马越(), 张博(), 吴守军, 刘彦钰, 刘彪, 贺维   

  1. 西北农林科技大学水利与建筑工程学院,杨凌 712100
  • 收稿日期:2026-01-16 修订日期:2026-02-10 出版日期:2026-07-15 发布日期:2026-08-13
  • 通信作者: 张 博,博士,副教授。E-mail:zbbjxauat522@126.com
  • 作者简介:马 越(2001—),男,硕士研究生。主要从事混凝土耐久性方面的研究。E-mail:312303482@qq.com
  • 基金资助:
    国家自然科学基金青年科学基金项目(52508224);陕西省博士后科研项目一等资助(2023BSHYDZZ65)

Durability Analysis of Steel Fiber Reinforced Concrete under Coupled Salt Freeze-Thaw and Dry-Wet Cycles

MA Yue(), ZHANG Bo(), WU Shoujun, LIU Yanyu, LIU Biao, HE Wei   

  1. College of Water Resources and Architectural Engineering,Northwest A&F University,Yangling 712100,China
  • Received:2026-01-16 Revised:2026-02-10 Published:2026-07-15 Online:2026-08-13

摘要:

寒区海洋环境下,混凝土常受氯盐侵蚀、冻融及干湿循环耦合作用,对混凝土结构安全造成严重威胁。本文通过盐冻循环、盐冻-干湿循环试验,研究了不同环境下普通混凝土(NC)与钢纤维混凝土(SFRC)的质量损失率、相对动弹性模量、抗折强度损失率和弯曲韧性演变规律,在此基础上结合SEM微观分析,探究SFRC在盐冻-干湿循环下的损伤机理。结果表明,盐冻-干湿循环会显著加速混凝土性能的劣化,盐冻-干湿循环4次后,NC的相对动弹性模量降至60%以下,NC与SFRC的抗折强度分别降低33.3%与29.5%,钢纤维的加入能提高混凝土在盐冻-干湿环境下的耐久性。SFRC的弯曲韧性随循环次数的增加而下降,盐冻-干湿循环4次后其峰值荷载下降27.6%,双峰特征趋于消失,纤维-水泥界面过渡区的劣化是影响其弯曲性能的主要因素。盐冻-干湿循环形成的裂缝扩展、侵蚀离子扩散、化学侵蚀的交替过程造成混凝土物理力学性能的退化。

关键词: 钢纤维混凝土, 冻融循环, 氯盐侵蚀, 干湿循环, 弯曲韧性, 耐久性

Abstract:

Concrete structures in cold marine regions are exposed to chloride attack, freeze-thaw action, and alternating wetting and drying. The combined effects of these processes promote internal damage accumulation and compromise long-term structural safety. Steel fibers can bridge cracks and restrict their propagation, thereby improving concrete resistance to environmental attack. However, the durability and flexural toughness evolution of steel fiber-reinforced concrete (SFRC) under the coupled effects of chloride attack, freeze-thaw cycling, and dry-wet cycling remain insufficiently understood. To address this gap, this study adopted a staged coupling regime reflecting the seasonal conditions of cold marine environments and investigated the macroscopic deterioration and microscopic damage mechanisms of SFRC.

Laboratory accelerated tests were conducted on C40 ordinary concrete (NC) and SFRC containing approximately 2% (volume fraction) corrugated steel fibers. A 3.5% (mass fraction) NaCl solution was used to simulate the chloride environment of seawater. Two exposure regimes were designed: salt freeze-thaw cycling alone and a coupled regime that combined salt freeze-thaw with dry-wet cycling. In the coupled regime, 50 salt freeze-thaw cycles were first applied to simulate cumulative winter freeze-thaw damage, followed by seven dry-wet cycles to represent alternating wetting and drying in tidal or splash zones during the non-freezing season. This sequence constituted one coupled cycle. The mass loss rate, relative dynamic modulus of elasticity, flexural strength, load-displacement response, and flexural toughness were evaluated. Scanning electron microscopy (SEM) and energy-dispersive spectroscopy (EDS) were used to characterize deterioration of the cementitious matrix and changes in the interfacial transition zone between the steel fibers and cementitious matrix.

The results show that coupled salt freeze-thaw and dry-wet cycling markedly accelerate concrete deterioration. After four coupled cycles, the relative dynamic modulus of elasticity of NC falls below 60%, while the flexural strengths of NC and SFRC decrease by 33.3% and 29.5%, respectively. The smaller reduction in SFRC demonstrates that steel fibers enhance concrete durability under the coupled environment. Nevertheless, the flexural toughness of SFRC progressively decreases with cycling. After four coupled cycles, its peak load decreases by 27.6%, and the characteristic double-peak response tends to disappear, indicating a continuing loss of fiber-bridging and energy-dissipation capacity.

Microstructural observations indicate that frost-induced expansion and drying shrinkage jointly promote crack propagation and increase pore connectivity. As a result, Cl- ingress is accelerated. Chloride-bearing reaction products, including Friedel’s salt, accumulate in pores and cracks; their expansion generates additional stresses and induces further microcracking. Chloride-induced corrosion roughens the steel-fiber surface, damages the interfacial transition zone, weakens fiber-matrix bonding and consequently reduces frictional energy dissipation during fiber pullout. These processes create a self-reinforcing sequence of crack propagation, ion diffusion, chemical attack, accumulation of expansive products, and renewed crack growth, which is identified as the primary mechanism driving the rapid degradation of the physical and mechanical properties of concrete. By linking macroscopic performance loss with microstructural evidence at the matrix and interface scales, this study clarifies the coupled deterioration mechanism of SFRC and demonstrates that flexural toughness is particularly sensitive to environmental damage. The findings provide a scientific basis for durability design, in-service condition assessment, and service-life prediction of SFRC structures in cold marine environments.

Key words: steel fiber reinforced concrete, freeze-thaw cycle, chloride attack, dry-wet cycle, flexural toughness, durability

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