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一种新型SFCBs增强复合抗剪连接件的剪切机理:试验、理论研究与数值模型

Shear Mechanism of a Novel SFCBs-Reinforced Composite Shear Connector: Experimental, Theoretical Investigations and Numerical Model.

作者信息

Xue Chengfeng, Huang Hao, Jia Qing

机构信息

College of Civil Engineering, Xi'jing University, Xi'an 710123, China.

School of Highway, Chang'an University, Xi'an 710064, China.

出版信息

Materials (Basel). 2024 Jul 15;17(14):3508. doi: 10.3390/ma17143508.

Abstract

Traditional stud and perfobond leiste (PBL) shear connectors are commonly used as load-transferring components in steel-concrete composite structures. Composite shear connectors fully utilize the advantages of traditional stud and PBL shear connectors. In order to maximize the advantages of composite shear connectors, a novel shear connector for complex environments was proposed. The steel-FRP composite bars (SFCBs) with excellent fatigue resistance and corrosion resistance were introduced to replace the steel bars. This study discussed the failure modes, load-slip curves, and load-strain curves of the composite shear connector. In addition, a finite element analysis (FEA) model was developed to analyze the influence of various factors on its shear behavior. Results showed that compared with traditional composite shear connectors, the introduction of SFCB resulted in a promotion of 7.85% in shear stiffness, and it also led to a significant increase of 63.61% in ductility, further enhancing the mechanical performance. Meanwhile, FEA models were well fitted to the test results, and parametric analysis showed variate effects on shear bearing capacity. In the end, an equation was established to calculate the shear capacity of composite shear connectors, which could provide a reference for further research and engineering applications.

摘要

传统的栓钉和开孔钢板连接件(PBL)通常用作钢-混凝土组合结构中的荷载传递部件。组合式抗剪连接件充分利用了传统栓钉和PBL抗剪连接件的优点。为了最大限度地发挥组合式抗剪连接件的优势,提出了一种适用于复杂环境的新型抗剪连接件。引入具有优异抗疲劳性和耐腐蚀性的钢-纤维增强复合材料筋(SFCB)来替代钢筋。本研究探讨了组合式抗剪连接件的破坏模式、荷载-滑移曲线和荷载-应变曲线。此外,还建立了有限元分析(FEA)模型,以分析各种因素对其抗剪性能的影响。结果表明,与传统组合式抗剪连接件相比,引入SFCB使抗剪刚度提高了7.85%,延性显著提高了63.61%,进一步提升了力学性能。同时,有限元模型与试验结果拟合良好,参数分析表明各变量对抗剪承载力有影响。最后,建立了计算组合式抗剪连接件抗剪承载力的公式,可为进一步的研究和工程应用提供参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd46/11278050/07c1f5d94208/materials-17-03508-g001.jpg

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