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Compound Shear-Flexural Capacity of Reinforced Concrete-Topped Precast Prestressed Bridge Decks

机译:钢筋混凝土预制预制预应力桥面板的复合抗剪承载力

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摘要

Modern concrete bridge decks commonly consist of stay-in-place (SIP) precast panels seated on precast concrete beams and topped with cast-in-place (CIP) reinforced concrete. Such composite bridge decks have been experimentally tested by various researchers to assess structural performance. However, a failure theory that describes the failure mechanism and accurately predicts the corresponding load has not been previously derived. When monotonically increasing patch loads are applied, delamination occurs between the CIP concrete and SIP panels, with a compound shear-flexure mechanism resulting. An additive model of flexural yield line failure in the lower SIP precast prestressed panels and punching shear in the upper CIP-reinforced concrete portion of the deck system is derived. Analyses are compared to full-scale experimental results of a tandem wheel load straddling adjacent SIP panels and a trailing wheel load on a single panel. Alone, both yield line and punching-shear theories gave poor predictions of the observed failure load; however, the proposed compound shear-flexure failure mechanism load capacities are within 2% accuracy of the experimentally observed loads. Better estimation using the proposed theory of composite SIP-CIP deck system capacities will aid in improving the design efficiency of these systems.
机译:现代混凝土桥面板通常由静置(SIP)预制面板组成,这些面板位于预制混凝土梁上,并顶部浇铸(CIP)钢筋混凝土。各种研究人员已经对这种复合桥面板进行了实验测试,以评估结构性能。然而,先前尚未得到描述故障机理并准确预测相应载荷的故障理论。当单调增加贴片载荷时,CIP混凝土和SIP面板之间会发生分层,从而产生复合剪切挠曲机制。推导了下部SIP预制预应力板的弯曲屈服线破坏和甲板系统的上部CIP钢筋混凝土部分的冲剪的加性模型。将分析结果与跨过相邻SIP面板的串联轮负载和单个面板上的后轮负载的全面实验结果进行比较。单是屈服线理论和冲剪理论都无法对观察到的破坏载荷做出很好的预测。但是,建议的复合剪切挠曲破坏机制的载荷能力在实验观察到的载荷的2%精度范围内。使用建议的复合SIP-CIP甲板系统容量理论进行更好的估算将有助于提高这些系统的设计效率。

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