材料科学
结构工程
冲孔
延展性(地球科学)
脆性
刚度
梁(结构)
参数统计
有限元法
复合材料
复合数
剪切(地质)
数值分析
天然橡胶
铝
胶凝的
软化
棒
非线性系统
轮缘
作者
Ahmed A. Hamoda,Mizan Ahmed,Saad A. Yehia,Wensu Chen,Aref A. Abadel
出处
期刊:Structures
[Elsevier BV]
日期:2026-08-31
卷期号:92: 112918-112918
标识
DOI:10.1016/j.istruc.2026.112918
摘要
This study presents an innovative hybrid strengthening technique aimed at improving the punching shear resistance and ductility of flat slab–column connections by implanting Strain-Hardening Cementitious Composite (SHCC) beams within the critical punching region and mechanically confined using U-shaped galvanized steel rods (UGSRs). The UGSRs were anchored through a demountable steel–rubber strip system designed to improve confinement efficiency and promote ductile load transfer. An experimental program involving seven full-scale slabs investigated the effects of UGSR location, rubber interlayers, and SHCC beam thickness on structural performance. The results demonstrated that closer UGSR placement enhanced confinement and load-carrying capacity, while rubber layers significantly improved ductility and energy dissipation. The proposed system effectively transformed brittle punching failure into a stable ductile mechanism. The best performance was achieved using a 70 mm thick SHCC beam positioned at 3d from the column face, resulting in an 89% increase in punching capacity along with substantial gains in stiffness and energy dissipation. A validated three-dimensional linear and nonlinear finite element model, showing less than 5% deviation from experimental results, was further employed for parametric analysis. Based on the experimental and numerical findings, an analytical equation was developed to predict the ultimate punching shear capacity of slab–column connections strengthened using implanted SHCC beams with confined UGSR anchorage.
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