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水力发电学报 ›› 2025, Vol. 44 ›› Issue (8): 93-104.doi: 10.11660/slfdxb.20250809

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单轴压缩作用下纤维增强耐磨粉煤灰混凝土力学特征参数

  

  • 出版日期:2025-08-25 发布日期:2025-08-25

Mechanical characteristics of fiber-reinforced abrasion-resistant fly ash concrete under uniaxial compression

  • Online:2025-08-25 Published:2025-08-25

摘要: 为改善高强耐磨粉煤灰混凝土(HF混凝土)脆性破坏特征,选取聚丙烯纤维(PP)与聚丙烯腈纤维(PAN)对HF混凝土进行增强,并结合数字图像相关技术(DIC)及超声波检测(UT),对纤维增强HF混凝土在压缩损伤过程中的应力-应变特征参数进行分析。结果表明:纤维增强HF混凝土的损伤破坏全过程可分为弹性阶段、塑性阶段、突变损伤阶段、加速损伤阶段和残余破坏5个阶段;聚丙烯纤维PP主要作用于塑性阶段抑制微裂缝的萌生,聚丙烯腈纤维PAN主要作用于突变损伤阶段抑制微裂缝的进一步扩展;当PP掺量0.6 kg/m3、PAN掺量0.6 kg/m3时两种纤维具有最优的混杂效应,相比单掺PP和单掺PAN时峰值应力分别提高了8.35%和4.47%,压缩韧性指数分别提高了23.74%和9.87%。最后,基于CEB-FIP模型和过镇海模型建立了纤维增强HF混凝土应力-应变全曲线模型,并引入改进差分进化算法对模型进行优化,优化后的模型曲线与试验曲线吻合较好。该研究结果可为纤维增强HF混凝土的后续研究和工程应用提供参考。

关键词: HF混凝土, 纤维增韧, 数字图像相关(DIC), 超声波检测, 应力-应变, 损伤演变

Abstract: This study selects polypropylene fibers (PP) and polyacrylonitrile fibers (PAN) as reinforcing contents of high-strength wear-resistant fly ash concrete (HF concrete) to improve its brittle damage characteristics. Combining digital image correlation technology (DIC) and ultrasonic detection (UT), we conduct experimental tests and examine the stress-strain characteristic parameters of this fiber-reinforced HF concrete under the condition of compression damage. The results show its damage and failure process can be divided into five stages-elasticity, plasticity, sudden damage, accelerated damage, and residual damage. PP inhibits the initiation of microcracks in elastoplastic stage, and PAN inhibits the propagation of microcracks in abrupt damage stage. With a PP content of 0.6 kg/m3 and PAN of 0.6 kg/m3, the concrete enjoys the best hybrid effect and a peak stress increase of 8.35% or 4.47% in comparison with that of the single PP or PAN respectively, and it manifests an increase of 23.74% or 9.87% respectively in its compressive toughness index. Finally, a stress-strain full curve model is developed for such fiber-reinforced HF concrete based on the CEB-FIP model and Guo Zhenhai model, and it is optimized using an improved differential evolution algorithm. It gives optimized stress-strain full curves in good agreement with the experimental curves. Our findings help engineering application of fiber-reinforced HF concrete and lay a basis for follow-up research.

Key words: HF concrete, fiber toughening, digital image correlation (DIC), ultrasonic detection, stress-strain, damage evolution

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