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用于安全设计的碳纤维增强聚合物混凝土梁中延性比和承载力增强的多尺度数值研究

Multiscale Numerical Study of Enhanced Ductility Ratios and Capacity in Carbon Fiber-Reinforced Polymer Concrete Beams for Safety Design.

作者信息

Maidi Moab, Sherzer Gili Lifshitz, Gal Erez

机构信息

Department of Civil and Environmental Engineering, Ben-Gurion University of the Negev, Beer Sheva 8410501, Israel.

Department of Civil Engineering, Braude College of Engineering, Karmiel 2161002, Israel.

出版信息

Polymers (Basel). 2025 Jan 17;17(2):234. doi: 10.3390/polym17020234.

Abstract

Rigid reinforced concrete (RC) frames are generally adopted as stiff elements to make the building structures resistant to seismic forces. However, a method has yet to be fully sought to provide earthquake resistance through optimizing beam and column performance in a rigid frame. Due to its high corrosion resistance, the integration of CFRP offers an opportunity to reduce frequent repairs and increase durability. This paper presents the structural response of CFRP beams integrated into rigid frames when subjected to seismic events. Without any design provision for CFRP systems in extreme events, multiscale simulations and parametric analyses were performed to optimize the residual state and global performance. Macroparameters, represented by the ductility ratio and microfactors, have been analyzed using a customized version of the modified compression field theory (MCFT). The main parameters considered were reinforcement under tension and compression, strength of concrete, height-to-width ratio, section cover, and confinement level, all of which are important to understand their influence on seismic performance. The parametric analysis results highlight the increased ductility and higher load-carrying capacity of the CFRP-reinforced tested component compared to the RC component. These results shed light on the possibility of designing CFRP-reinforced concrete components that could improve ductile frames with increased energy dissipation and be suitable for applications in non-corrosive seismic-resistant buildings. This also shows reduced brittleness and enhancement in the failure mode. Numerical simulations and experimental results showed a strong correlation with a deviation of about 8.3%, underlining the reliability of the proposed approach for designing seismic-resistant CFRP-reinforced structures.

摘要

刚性钢筋混凝土(RC)框架通常被用作刚性构件,以使建筑结构能够抵抗地震力。然而,尚未找到一种通过优化刚性框架中梁和柱的性能来提供抗震能力的方法。由于其高耐腐蚀性,碳纤维增强复合材料(CFRP)的集成提供了减少频繁维修并提高耐久性的机会。本文介绍了集成到刚性框架中的CFRP梁在地震作用下的结构响应。在极端事件中,由于没有针对CFRP系统的任何设计规定,因此进行了多尺度模拟和参数分析,以优化残余状态和整体性能。使用改进压缩场理论(MCFT)的定制版本分析了以延性比表示的宏观参数和微观因素。所考虑的主要参数包括拉压钢筋、混凝土强度、高宽比、截面保护层厚度和约束水平,所有这些对于理解它们对抗震性能的影响都很重要。参数分析结果表明,与RC构件相比,CFRP增强测试构件的延性增加且承载能力更高。这些结果揭示了设计CFRP增强混凝土构件的可能性,这些构件可以改善延性框架,增加能量耗散,适用于无腐蚀的抗震建筑。这也表明脆性降低,破坏模式得到改善。数值模拟和实验结果显示出很强的相关性,偏差约为8.3%,突出了所提出的抗震CFRP增强结构设计方法的可靠性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a543/11769430/6a4f7b33ad4f/polymers-17-00234-g015.jpg

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