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Study on Mechanical Performance of Prestressed UHPFRC U-Beam Bridges

机译:预应力UHPFRC U形梁桥的力学性能研究

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The forms of U-shaped UHPFRC beams have not been investigated for the highway footbridge. Compared with the traditional section forms, the U-shaped UHPFRC beams can reduce the material consumption under the condition of providing the same bearing capacity. Furthermore, prestressed U-shaped UHPFRC beams are rarely reported in the existing research. This paper explores the flexural behavior of prestressed ultrahigh-performance fiber-reinforced concrete (UHPFRC) beam bridge having unique design and the material properties of prestressed reinforcement combined with UHPFRC. Based on the unique shape of the U beam, the flexural performance test of the full-scale model of the prestressed UHPFRC U beam is conducted. Then, the finite element model considering material nonlinearity and structural ductility is established using Midas FEA software. Finally, the failure mode, failure process, cracking moment, ultimate moment, and strain of the full-scale model are studied. The calculation formulas of the flexural capacity of UHPFRC U beam considering ductile failure are derived. The comparative analysis results show that the prestressed UHPFRC U beam has an excellent flexural performance. The bending failure of a U-shaped beam belongs to the group of ductile failures, which is characterized by the main crack along the central rib and the loading center, which is accompanied by multiple microcracks. The failure process can be divided into four stages: linear deformation, microcracks development, main cracks development, and bearing capacity decline. The incorporation of steel fiber and the interaction between UHPFRC and reinforcement can effectively reduce the development of cracks. The U-beam bending moment is 50–55% of the ultimate bending moment. In the UHPFRC bridge design, the deformation can be used as a control index, and material advantages of the UHPFRC can be used to a certain extent. The strain-hardening characteristics of the UHPFRC are obvious in the loading process. The finite element analysis results show that the maximum strain value appears at the central rib, followed by the transverse strain value of the bottom plate, while the minimum strain is the longitudinal strain value of the bottom plate. The deformation of the rib plate is the largest, and the strain of the other measuring points changes slowly. The farther away from the center the measurement point is, the slower its strain changes. Therefore, the load is mainly caused by the central rib and the loading center plate. With the increase in the deformation, the load on both sides continuously moves to the central rib along the plate surface. This study can provide a useful reference for theoretical analysis and design of prestressed U-UHPFRC bridges.
机译:U形UHPFRC梁的形式尚未对公路行人桥进行研究。与传统截面形式相比,U形UHPFRC光束可以在提供相同承载力的情况下降低材料消耗。此外,在现有的研究中很少报道预应力的U形UHPFRC光束。本文探讨了预应力超高性能纤维钢筋混凝土(UHPFRC)梁桥的弯曲行为,具有独特的设计和预应力加固的材料特性,与UHPFRC相结合。基于U光束的独特形状,进行预应力UHPFRC U光束的全尺度模型的弯曲性能测试。然后,使用MIDAS FEA软件建立考虑材料非线性和结构延展性的有限元模型。最后,研究了全规模模型的故障模式,故障过程,开裂时刻,最终时刻和应变。推导了考虑延展性故障的UHPFRC U光束弯曲能力的计算公式。比较分析结果表明,预应力的UHPFRC U光束具有出色的抗弯性能。 U形光束的弯曲失效属于延展性故障组,其特征在于沿中央肋和装载中心的主要裂缝,其伴随着多个微裂纹。故障过程可分为四个阶段:线性变形,微裂纹开发,主要裂缝发育,承载力下降。钢纤维的掺入和UHPFRC和钢筋之间的相互作用可以有效地降低裂缝的发展。 U-束弯矩是最终弯矩的50-55%。在UHPFRC桥梁设计中,变形可以用作控制指数,并且UHPFRC的材料优势可用于一定程度。 UHPFRC的应变硬化特性在装载过程中是显而易见的。有限元分析结果表明,最大应变值出现在中央肋处,其次是底板的横向应变值,而最小应变是底板的纵向应变值。肋板的变形是最大的,并且其他测量点的应变缓慢变化。距离中心的测量点越远,其应变变化越慢。因此,负载主要由中央肋和装载中心板引起。随着变形的增加,两侧的负载连续地沿板表面移动到中心肋。本研究可以为预应力UHPFRC桥梁提供理论分析和设计提供有用的参考。

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