使用碳纤维增强聚合物钢筋作为横向层压木材-混凝土板剪力连接件的影响数值评估

Larissa Fé Alves, Poliana de Melo Pessôa, P. I. L. G. Jardim, Emerson Faustino, H. F. dos Santos, Franscisco Antonio Rocco Lahr, Diego Henrique de Almeida, A. Christoforo
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摘要

近年来,碳纤维增强聚合物(CFRP)板材已被用于加固交叉层压木材(CLT)-混凝土系统。现有研究表明,在 CLT 混凝土板材中使用 CFRP 钢筋作为剪力连接件可以改善这些构件的结构性能。然而,由于缺乏全面的研究,对 CFRP 钢筋作为剪力连接件的应用和理解仍有待提高。因此,本研究旨在通过有限元(FE)数值模拟,评估使用 CFRP 钢筋作为剪力连接件的 CLT 混凝土面板的结构性能。通过改变连接器材料、CLT 层数、连接器插入角度和连接器嵌入长度,进行了参数研究。结果表明,与使用钢连接件的面板相比,使用 CFRP 连接件的面板具有更高的最大荷载、抗弯强度和最大弯矩。回归模型显示,所分析的参数可解释 80.2% 至 99.9% 的机械性能变化。本研究中一些回归模型的解释力(R2)很高,这凸显了模型的稳健性。对于面板的最大荷载、最大荷载时的位移、延展性、抗弯强度和最大弯矩而言,CLT 层数和连接器材料是最重要的参数。CLT层数和连接器插入角度是对面板有效弯曲刚度影响最大的参数。这项研究凸显了对 CLT 混凝土复合材料进行研究的重要性,以及开发精确估算其行为的方程的必要性。此外,数值模拟已被证明非常有价值,可提供与实验室结果相当的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Evaluation of the Influence of Using Carbon-Fiber-Reinforced Polymer Rebars as Shear Connectors for Cross-Laminated Timber–Concrete Panels
Carbon fiber-reinforced polymer (CFRP) sheets have been used to reinforce cross-laminated timber (CLT)–concrete systems in recent years. The existing studies have indicated that the use of CFRP rebars as shear connectors in CLT–concrete panels can improve the structural performance of these elements. However, the application and understanding of CFRP rebars as shear connectors still need to be improved, since comprehensive studies on the subject are not available. Therefore, this research aimed to evaluate the structural performance of CLT–concrete panels with CFRP rebars as shear connectors through finite element (FE) numerical simulation. A parametric study was conducted, varying the connector material, the number of CLT layers, the connector insertion angle, and the connector embedment length. According to the results, panels with CFRP connectors showed a higher maximum load, bending strength, and maximum bending moment than panels with steel connectors. The regression models revealed that the parameters analyzed explained between 80.2% and 99.9% of the variability in the mechanical properties under investigation. The high explanatory power (R2) of some regression models in this study underscores the robustness of the models. The number of CLT layers and the connector material were the most significant parameters for the panels’ maximum load, displacement at the maximum load, ductility, bending strength, and maximum bending moment. The number of CLT layers and the connector insertion angle were the most significant parameters for the panels’ effective bending stiffness. This research highlights the importance of studies on CLT–concrete composites and the need to develop equations to estimate their behavior accurately. Moreover, numerical simulations have proven very valuable, providing results comparable to laboratory results.
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