高温下RC板柱节点抗冲切性能数值研究

NUMERICAL STUDY ON PUNCHING SHEAR PERFORMANCE OF RC SLAB-COLUMN CONNECTIONS DURING HIGH TEMPERATURE

  • 摘要: 为研究高温对钢筋混凝土(RC)板柱结构抗冲切性能的影响,该文考虑钢筋和混凝土材料力学性能的高温劣化效应,基于有限元软件ABAQUS建立了三维数值研究模型。在验证数值模型的基础上,讨论了不同受火时间下板柱节点的抗冲切性能。此外,量化了配筋率、板厚、受火位置、受火面积等参数对高温下RC板柱节点抗冲切性能的影响。结果表明:在常温下发生冲切破坏的板柱节点,由于高温对节点抗弯性能劣化作用更剧烈,在高温作用下可能发生弯冲破坏。当受压面局部受火达150 min时,RC板柱节点抗冲切承载力较常温下降18.5%。板柱节点受拉面受火相对于受压面受火承载力下降更严重;相比于板顶或板底单面受火,双面受火工况下试件的承载力下降更加显著。配筋率和板厚的增加能提高高温下RC板柱节点的抗冲切承载力,但会降低节点的延性。当受压面全面积受火150 min时,RC板柱节点抗冲切承载力较常温下降31.1%,而变形能力提高13.3%。

     

    Abstract: To investigate the effects of high temperature on the punching shear behavior of reinforced concrete (RC) flat slab structures, in this study, the three-dimensional numerical models were established by using finite element software ABAQUS with consideration of the degradation effects of the mechanical properties of rebars and concrete at high temperature. After the validation of the numerical models, the punching shear behavior of slab-column connections at various fire durations was discussed. Moreover, the effects of reinforcement ratios, slab thicknesses, fire locations and fire area on the punching shear resistance of RC slab-column connections at high temperature were quantified. The results indicate that the slab-column connection undergoing punching shear failure at ambient temperature may fail in flexural-punching at high temperature as the degradation of flexural resistance is much greater than that of punching shear resistance. The punching shear capacity of RC slab-column connection decreases by 18.5% compared with that at ambient temperature when the compression surface of the slab is subjected to local fire for 150 minutes. The load capacity of the slab-column connections decreases more significantly when the tension surface is subjected to fire. Compared with the single-sided fire on the top or bottom of the slab, load capacity of specimens under double-sided fire conditions decreases more significantly. The increase in reinforcement ratio and slab thickness can significantly improve the punching shear resistance of RC slab-column connections at high temperatures, but it will reduce the ductility. When the entire compression surface of the slab is subjected to fire for 150 minutes, the punching shear resistance of RC slab-column connection decreases by 31.1% compared with that of RC slab-column connection under ambient temperature whereas the deformation capacity increases by 13.3 %.

     

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