首页> 外文期刊>Journal of bridge engineering >Transverse Modeling of Concrete Box-Girder Bridges for Prediction of Deck Slab Ultimate Load Capacity
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Transverse Modeling of Concrete Box-Girder Bridges for Prediction of Deck Slab Ultimate Load Capacity

机译:混凝土箱梁桥的横向建模预测甲板板极限承载力

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Concrete box-girder bridges are one of the most commonly used bridge types owing to ease of maintenance and economy in construction. However, current design codes do not realistically consider the effects of haunches and web restraints on the strength enhancement of the top deck slab in the box-girder bridges. The purpose of this paper is to propose a rational model that can consider the effects of arching and haunches on the prediction of ultimate load capacity of deck slabs in concrete box-girder bridges under vertical loading. A rational frame model for the transverse direction of box girders that considers the effects of rigid joints and nonprismatic elements was formulated in this study. The flexural strength enhancement of the upper slab from the restraints of webs and arching action also was derived. To verify the model, a comprehensive experimental program was set up, and several full-scale concrete box girders were tested. The displacements and strains of steel bars and concrete were measured for test box girders during the vertical loading process. It was found that the cracking patterns and failure modes of box girders vary greatly depending on the existence and size of haunches. The present test results also indicate that an increase in haunch size increases the ultimate load capacity of the deck slab of a box girder greatly. The load capacity of a haunched deck slab is more than two times greater than that of the deck slab without haunches depending on the size of haunches. This effect is taken into account in this analysis through the consideration of arching action for the upper slab with various haunch sizes. Comparison of the proposed theory with test data shows good agreement on the ultimate loads and displacements. This study indicates that the theory without considering arching action greatly underestimates the ultimate load capacities of deck slabs in box-girder bridges. Therefore, the effects of haunches and arching action must be considered realistically for more advanced and economical design of box-girder bridges.
机译:混凝土箱梁桥由于易于维护和经济施工而成为最常用的桥梁类型之一。但是,当前的设计规范并未现实地考虑到臀部和腹板约束对箱梁桥顶板强度增强的影响。本文的目的是提出一个合理的模型,该模型可以考虑拱形和斜撑对竖向荷载作用下混凝土箱梁桥面板的极限承载力预测的影响。在此研究中,考虑了刚性节点和非棱柱单元的影响,建立了箱形梁横向合理框架模型。还从腹板的约束和拱起作用得出了上平板的抗弯强度的提高。为了验证模型,建立了一个全面的实验程序,并测试了几座全尺寸混凝土箱梁。在垂直加载过程中,测量了试验箱梁的钢筋和混凝土的位移和应变。结果发现,箱梁的开裂方式和破坏方式根据吊舱的存在和大小而有很大差异。目前的测试结果还表明,吊舱尺寸的增加极大地增加了箱梁桥面板的极限承载能力。直角甲板平板的承载能力是不带直角甲板的平板承载能力的两倍以上,具体取决于直觉尺寸。在此分析中,通过考虑具有各种直角尺寸的上层板的拱起作用,考虑到了这种影响。所提出的理论与试验数据的比较表明,在极限载荷和位移上有很好的一致性。这项研究表明,不考虑拱形作用的理论大大低估了箱梁桥面板的极限承载能力。因此,对于箱梁桥的更高级和经济的设计,必须现实地考虑到弯腰和拱形作用的影响。

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