欢迎访问《硅酸盐通报》官方网站,今天是

硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (8): 2664-2675.DOI: 10.16552/j.cnki.issn1001-1625.2026.0170

• 水泥混凝土 • 上一篇    下一篇

冲击荷载下碳纤维对聚合物改性混凝土力学性能的影响

李梦阳1(), 张超1, 王志航1(), 张悦1, 宋晓博1, 白二雷2, 马建军3   

  1. 1.空军勤务学院,徐州 221000
    2.空军工程大学航空工程学院,西安 710038
    3.中国人民解放军94789部队,南京 210018
  • 收稿日期:2026-02-25 修订日期:2026-03-24 出版日期:2026-08-15 发布日期:2026-09-01
  • 通信作者: 王志航,博士,讲师。E-mail:songchenwzh@163.com
  • 作者简介:李梦阳(2003—),男,硕士研究生。主要从事机场工程的研究。E-mail:1176634098@qq.com
  • 基金资助:
    国家自然科学基金(52278287)

Influence of Carbon Fiber on Mechanical Properties of Polymer Modified Concrete under Impact Load

LI Mengyang1(), ZHANG Chao1, WANG Zhihang1(), ZHANG Yue1, SONG Xiaobo1, BAI Erlei2, MA Jianjun3   

  1. 1.Air Force Logistics Academy,Xuzhou 221000,China
    2.Aviation Engineering School,Air Force Engineering University,Xi’an 710038,China
    3.Unit 94789 People’s Liberation Army of China,Nanjing 210018,China
  • Received:2026-02-25 Revised:2026-03-24 Published:2026-08-15 Online:2026-09-01

摘要:

为探究冲击荷载下碳纤维对聚合物改性混凝土(PMC)力学性能的影响,制备了碳纤维体积掺量分别为0%、0.1%、0.2%和0.3%的碳纤维增强聚合物改性混凝土(CFRPMC),通过静态力学性能试验和利用分离式霍普金森压杆(SHPB)进行冲击压缩试验,获得了不同碳纤维掺量下CFRPMC静态加载下的力学表现、动态应力-应变曲线、动态抗压强度、动态峰值应变、动态峰值韧度及破坏形态。结果表明,CFRPMC的力学性能随碳纤维体积掺量的增加呈先增强后减弱的趋势。CFRPMC的静态力学性能在碳纤维掺量为0.2%时达到最优,抗压强度、劈拉强度与抗折强度较未掺纤维时分别提升9.0%、48.9%与43.8%,拉压比与折压比显著提高,脆性明显改善。冲击荷载下,CFRPMC表现出显著的应变率强化效应,动态抗压强度、动态峰值应变和动态峰值韧度随应变率的提高而不断增大。在相近应变率下,碳纤维体积掺量为0.2%的CFRPMC动态抗压强度最大,较未掺加碳纤维时提高23.5%,且冲击韧性是未掺加碳纤维时的2.1倍。碳纤维的掺入能有效延缓裂缝扩展,使CFRPMC的破坏形态由脆性粉碎向块状破坏转变,且破碎块度分析进一步表明细颗粒碎块占比减少。然而,过量碳纤维(0.3%)易引发团聚,在混凝土内部形成缺陷,导致性能回落。综合静动态力学性能与破坏形态分析,碳纤维体积掺量为0.2%时,CFRPMC可实现强度与韧性的协同优化,抗冲击能力和能量吸收效率显著提升。

关键词: 碳纤维, 碳纤维增强聚合物改性混凝土, 动态抗压强度, 动态峰值应变, 动态峰值韧度, 破坏形态

Abstract:

Polymer modified concrete (PMC) has attracted considerable attention in civil and protective engineering because of its improved toughness, crack resistance, and bonding performance compared with ordinary concrete. However, despite these advantages, PMC remains a quasi-brittle material and still exhibits limited resistance to impact and dynamic loading. To further enhance its mechanical performance and energy absorption capacity under extreme loading conditions, carbon fibers, characterized by high strength, high modulus, and excellent crack-bridging capability, were incorporated into PMC. This study aimed to systematically investigate the influence of carbon fiber content on the static and dynamic mechanical behavior of carbon fiber reinforced polymer modified concrete (CFRPMC) and to reveal its strengthening and toughening mechanisms under impact loading. Four groups of specimens containing carbon fiber volume fractions of 0%, 0.1%, 0.2%, and 0.3% were prepared. Static mechanical tests were conducted to determine compressive strength, split tensile strength, and flexural strength. Dynamic compression tests were performed using a split Hopkinson pressure bar (SHPB) system under different impact pressures. Dynamic stress-strain responses, dynamic compressive strength, peak strain, peak toughness, and failure characteristics were analyzed. Furthermore, the influence of carbon fiber content on crack propagation and fragmentation behavior was evaluated through macroscopic failure observations. The experimental results demonstrate that the mechanical performance of CFRPMC exhibits a distinct trend of initial improvement followed by deterioration with increasing carbon fiber content. Under static loading, the optimal fiber content was found to be 0.2% by volume. At this content, the compressive strength, split tensile strength, and flexural strength reach 31.72, 4.66, and 8.96 MPa, respectively, representing increases of 9.0%, 48.9%, and 43.8% compared with the fiber-free PMC. In addition, the split tensile-compressive strength ratio and flexural-compressive strength ratio increase significantly, indicating a substantial reduction in brittleness and a remarkable improvement in toughness. Under impact loading, all specimens exhibit pronounced strain-rate sensitivity. Dynamic compressive strength, dynamic peak strain, and dynamic peak toughness increase continuously with increasing strain rate. Compared with PMC, CFRPMC shows wider stress-strain plateaus around the peak stress, indicating enhanced post-cracking load-carrying capacity and improved deformation resistance. Among all mixtures, the specimen containing 0.2% carbon fiber exhibits the best dynamic performance. At comparable strain rates, its dynamic compressive strength increases by up to 23.5% relative to PMC, while its impact toughness reaches approximately 2.1 times than that of control specimen. The maximum dynamic compressive strength recorded for CFRPMC with 0.2% carbon fiber reaches 60.17 MPa at a strain rate of 133.3 s-1.Analysis of concrete crushing morphology reveals that carbon fiber can effectively bridge microcracks and delay crack initiation and propagation during impact loading. Consequently, the failure mode gradually transforms from severe brittle pulverization to block-like fragmentation. Fragment-size observations further confirm a reduction in the proportion of fine particles after fiber incorporation, reflecting enhanced energy dissipation capability and improved structural integrity. However, excessive fiber content (0.3%) leads to fiber agglomeration, increases internal defects, and localizes stress concentrations, ultimately reducing both static and dynamic mechanical properties. Overall, the synergistic modification of polymer and carbon fiber significantly enhances the strength, toughness, and impact resistance of concrete. A carbon fiber volume fraction of 0.2% provides the optimal balance between crack-bridging efficiency and fiber dispersion, achieving simultaneous improvements in static strength, dynamic load-bearing capacity, and energy absorption performance. The findings provide valuable theoretical support and practical guidance for the design and application of high-performance impact resistance concrete materials in protective structures, transportation infrastructure, military engineering, and other critical engineering fields.

Key words: carbon fiber, carbon fiber reinforced polymer modified concrete, dynamic compressive strength, dynamic peak strain, dynamic peak toughness, failure morphology

中图分类号: