Finite Element Investigation of Angle Ring Confinement for Clustered Large-size Stud Shear Connector in Full-Depth Precast Concrete Bridge Deck Panel

K. Sriboonma, Chichaya Boonmee, Sacharuck Pornpeerakeat, K. Rodsin, Natawut Chaiwino
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Abstract

Full-Depth Precast Concrete (FDPC) bridge deck panel system, consisting of concrete deck and steel girders, has been used widely for highway and bridge construction due to rapid construction and replacement as well as in terms of economics. This system could integrate with clusters of large size headed-stud shear connectors for more significant connection, although larger composite actions were experienced. Therefore, a new angle steel ring confinement was introduced and tested by push-off samples for the most effective shear transfer. The Finite Element Analysis (FEA) of the push-off model with an in-depth investigation of non-linear concrete properties, boundary parameters, and different geometries of angle ring confinement was developed in this study. The FE models were verified with the push-off test in terms of loads, displacements, and failure stages. Nonlinear concrete material models: Concrete Damage (CD) and Drucker Prager (DP) were identified the different abilities either for predicting initial cracks, or determining maximum resistance and critical failure, respectively. The thickness of the angle and the sizes of hook bars were investigated for the most effective aspects of the angle ring confinement. The results showed comparable stiffness and load resistance for various aspects. However, compatible geometries, either 5 mm thick angles with DB12 hook bars or 10 mm angles with DB25 hook bars, were suggested. The final non-linear FEA model was reliable for comparative studies to FDPC push-off with different confinement configurations.
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全深度预制混凝土桥面板中大尺寸组合螺柱剪力连接件角环约束的有限元研究
全深度预制混凝土(FDPC)桥面系由混凝土桥面和钢梁组成,由于其快速的施工和更换以及经济性,已广泛应用于公路和桥梁建设。该系统可以与大尺寸双头螺栓抗剪连接件集群集成,以实现更显著的连接,尽管经历了更大的复合作用。因此,引入了一种新的角钢环约束,并通过推送样品测试了最有效的剪切传递。本研究开发了推挤模型的有限元分析(FEA),深入研究了非线性混凝土特性、边界参数和角环约束的不同几何形状。根据载荷、位移和失效阶段,通过推出试验验证了有限元模型。非线性混凝土材料模型:混凝土损伤(CD)和德鲁克-普拉格(DP)分别具有预测初始裂纹或确定最大阻力和临界失效的不同能力。针对角环约束的最有效方面,研究了角的厚度和钩杆的尺寸。结果表明,不同方面的刚度和抗载荷能力相当。然而,建议采用兼容的几何形状,即DB12钩杆的5 mm厚角度或DB25钩杆的10 mm角度。最终的非线性有限元分析模型对于不同约束配置的FDPC推送的比较研究是可靠的。
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来源期刊
Applied Science and Engineering Progress
Applied Science and Engineering Progress Engineering-Engineering (all)
CiteScore
4.70
自引率
0.00%
发文量
56
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