NC–UHPC组合梁抗冲击性能的数值研究

Numerical study on impact resistance of NC–UHPC composite beam

  • 摘要: 超高性能混凝土(UHPC)材料已成为极具前景的高性能材料,并在冲击和爆炸等防护工程领域中取得了良好的效果. 对于普通钢筋混凝土(NC)梁在受到冲击荷载时较易发生局部冲剪破坏,而纯UHPC梁虽可改善其冲击性能,但高昂的造价限制了其进一步的应用. 为了实现结构抗冲击性能和经济的平衡,提出UHPC局部替换和包裹的方案改善钢筋混凝土梁的抗冲击性能. 本文设计了NC梁、UHPC梁和NC–UHPC组合梁等不同的研究工况,然后对比分析各个试件的抗冲击性能. 结果表明:相比普通钢筋混凝土梁,UHPC局部替换方案可以有效的避免梁的局部冲剪破坏,而UHPC包裹在冲击荷载下梁的破坏模式由冲剪破坏转变为弯曲破坏,两种方案均可有效的减少梁跨中的峰值位移和残余位移;UHPC局部替换相较于包裹方案,梁的跨中峰值位移和残余位移较小,且具有更高的跨中承载能力,在实际过程中建议UHPC局部替换长度取大于2倍梁高以避免局部冲剪破坏.

     

    Abstract: Ultrahigh-performance concrete (UHPC) has become the most promising high-performance material, and has achieved excellent application in the field of impact and explosion protection engineering. Normal reinforced concrete (NC) beams subjected to impact load are prone to local punching shear failure. However, although the impact performance can be improved using UHPC beams, their application is limited by high costs. To achieve impact resistance at a lower cost, this work proposes a design scheme for locally replacing and wrapping NC beams with UHPC, with the aim of improving the impact resistance of NC beams. In this study, differing research conditions were employed (NC, UHPC, and NC–UHPC composite beams), and the impact resistance of specimens was compared and analyzed. Numerical models of NC and UHPC beams under impact loads were first established to verify the reliability of the modeling method, which is contact method, load application, initial velocity, boundary conditions, etc. The NC, UHPC, and NC–UHPC composite beam models were then established, and the impact performances of different NC–UHPC beam combinations were analyzed. The results revealed that compared with NC beams, the UHPC local replacement scheme effectively avoided local punching shear failure of beams. Under impact load, bending and shear cracks occurred on both sides, and the damage degree on both sides decreased with the increase of the local replacement length. For the UHPC wrapping, the failure mode of the beam changed from punching shear failure to bending failure. With an increase in UHPC thickness, the damage degree of the beam span increased, and it gradually reached that of the pure UHPC beam. Furthermore, both schemes effectively reduced peak displacement and residual displacement in the mid-span. Compared with the UHPC wrapping scheme, the peak displacement and residual displacement in the mid-span of the UHPC local replacement beam were reduced, and the mid-span bearing capacity was improved. Thus, we recommend that a local replacement length of more than twice the beam height should be selected to avoid the occurrence of local punching shear failure.

     

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