钢-FRP复合筋增强超高性能混凝土框架梁受弯性能试验研究

EXPERIMENTAL STUDY ON FLEXURAL PERFORMANCE OF ULTRA-HIGH-PERFORMANCE CONCRETE FRAME BEAMS REINFORCED WITH STEEL-FRP COMPOSITE BARS

  • 摘要: 为研究钢-FRP复合筋(steel-FRP composite bar,SFCB)增强超高性能混凝土(ultra-high performance concrete,UHPC)框架梁的受弯性能,对5榀框架梁进行了等效静力试验。对框架梁破坏模式、裂缝、承载力、变形、应变响应和塑性转动能力进行分析,研究了混凝土类型、筋材类型和梁端配筋率对框架梁受弯性能的影响。建立了框架梁三维有限元模型,并基于已验证的模型对SFCB的截面含钢率、内芯钢筋屈服强度、外包FRP弹性模量和极限抗拉强度进行了参数分析。结果表明,框架梁的破坏模式均为梁端混凝土压碎;采用UHPC替代普通混凝土能够显著增强框架梁的抗弯承载力、延性、极限耗能和塑形转动能力,抑制裂缝的产生和扩展;SFCB-UHPC框架梁的塑性转角为钢筋-UHPC框架梁的4.9倍,采用SFCB替代钢筋可以有效提升框架梁的梁端塑形转动能力;梁端配筋率的减小显著降低了梁端抗弯承载力、极限耗能和塑性转动能力,但提高了延性;建立了以梁端控制截面相对受压区高度和截面有效高度为自变量的等效塑性铰长度计算公式,预测值与实测值吻合良好。

     

    Abstract: To investigate the flexural performance of ultra-high-performance concrete (UHPC) frame beams reinforced with steel-FRP composite bars (SFCBs), an equivalent static test was conducted on 5 frame beams. In-depth analysis was carried out on the failure mode, on the crack, on the bearing capacity, on the deformation, on the strain response, and on the plastic rotational capacity of the frame beams. The effects of concrete type, of reinforcement type, and of beam-end reinforcement ratio on the flexural performance of the frame beams was studied. A three-dimensional finite element (FE) model of the frame beam was established and verified. Then, the steel ratio, the yield strength of the inner core steel bar, the elastic modulus of the FRP and the ultimate tensile strength of the SFCB were parametric analyzed. The experimental results revealed that the failure mode of all frame beams is the crushing of concrete at the beam-end and that the order of occurrence of plastic hinge is first beam-end and then mid-span. The substitution of normal strength concrete with UHPC significantly enhanced the flexural capacity, deformation, ductility, ultimate energy dissipation, and plastic rotational capacity of the frame beams while also inhibiting the generation and expansion of cracks. The plastic rotation angle of SFCB-UHPC frame beams was 4.9 times greater than those of steel-UHPC frame beams, demonstrating that the use of SFCB effectively enhances the beam-end plastic rotational capacity of the frame beams. A decrease in the beam-end reinforcement ratio significantly reduced the flexural capacity, ultimate energy dissipation, and beam-end plastic rotational capacity, while improving ductility. A formula was established for calculating the equivalent plastic hinge length, with the relative compressive zone height and effective section height of the beam-end controlling section as variables. The predicted values agree well with the measured values.

     

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