外粘碳纤维增强聚合物加固钢筋混凝土墙体的 P-M 作用图

Destiny S. Villa, Felipe J. Perez, G. Lomiento
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引用次数: 0

摘要

本研究为加装碳纤维增强聚合物(CFRP)的钢筋混凝土(RC)墙绘制了轴向荷载-弯矩(P-M)相互作用分析图。研究考虑了不同配筋比、不同轴向压缩荷载和不同 CFRP 层数的 12 英寸厚、1 英尺长的 RC 墙体截面。CFRP 材料被视为外部粘结在 RC 墙的拉伸面上,以研究其对截面抗弯能力的影响。每个 P-M 交互作用图都是在考虑离散压缩区的情况下,根据静态平衡和应变相容性原则生成的。60 级钢筋采用弹塑性钢筋应力-应变关系;混凝土采用单轴非线性压缩应力-应变关系;CFRP 拉伸采用线性应力-应变关系。考虑的破坏模式包括钢筋屈服、混凝土破碎和 CFRP 剥离。计算得出的 P-M 相互作用图经过归一化处理,可普遍用于使用 CFRP 对现有 RC 墙体进行改造。结果表明,随着 RC 墙体上轴向压缩力的增加,CFRP 的效果越差。CFRP 在具有类似梁行为的截面上更为有效,在这些截面上,配筋率往往最小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
P-M INTERACTION DIAGRAMS FOR REINFORCED CONCRETE WALLS RETROFITTED WITH EXTERNALLY BONDED CARBON-FIBER REINFORCED POLYMER
This research develops analytical axial load-bending moment (P-M) interaction diagrams for reinforced concrete (RC) walls retrofitted with carbon fiber reinforced polymer (CFRP). A 12-inch thick, 1-foot strip of RC wall section is considered with varying reinforcement ratios, varying axial compressive loading, and varying number of CFRP layers. The CFRP material is treated as externally bonded onto the tension face of the RC wall to investigate its impact on the flexural capacity of the section. Each P-M interaction diagram was generated considering a discretized compression zone and by satisfying principles of static equilibrium and strain compatibility. An elastic-plastic steel stress-strain relationship is used for Grade 60 reinforcement; a uniaxial nonlinear compressive stress-strain relationship is used for concrete; and a linear stress-strain relationship is used for CFRP in tension. The failure modes considered are steel yielding, concrete crushing, and CFRP debonding. The computed P-M interaction diagrams are normalized for their general use in the retrofit of existing RC walls using CFRP. Results show that as the axial compressive force on the RC wall increases, the less effective CFRP is. CFRP is more effective in sections with beam-like behavior, where the reinforcement ratio tends to be the smallest.
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