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Investigations on web-shear behavior of deep precast, prestressed concrete hollow core slabs

机译:深度预制,预应力混凝土空心芯板的纤维工行为的研究

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Shear tests were conducted on four precast, prestressed concrete hollow core (PCHC) slabs with depths ranging from 320 mm to 500 mm, resulting in two distinct modes of failure, i.e., web-shear and flexural-shear. Shear strength results of the specimens obtained from the experimental program were compared to those predicted by EN 1168 and ACI 318-14. The comparisons showed that in some instances, these codes overpredict shear capacity of the tested specimens. Furthermore, an finite element (FE) model aimed to simulate web-shear responses of PCHC slabs was developed using Abaqus/Explicit (2014). Concrete Damage Plasticity model (CDP model) was employed to model nonlinear behavior of concrete. The sensitivity of the numerical analyses was calibrated against four plastic parameters in the CDP model. The calibrations showed that web-shear behavior of PCHC slabs is not sensitive to three out of the four plastic parameters. However, the last parameter, dilation angle, significantly affects the predicted failure loads. The validity of the developed FE model was verified by 2 shear tests in the experimental program and another 8 shear tests from the literature. Parametric studies based on the verified model were then performed. The influence of design variables including concrete strength, slab geometry, and level of prestressing force, on web-shear behavior of PCHC slabs was examined. The parametric studies showed that concrete strength plays a dominant role in the web-shear performance. However, the choice of angular or smoother-surface void shapes does not lead to a noticeable difference in web-shear capacity. Besides, web-shear strength increases with web thickness. Most importantly, a high level of prestressing force increases additional shear stresses in concrete webs due to changes in strand stress within the transmission length region. In addition, it leads to higher compressive forces in concrete diagonal struts. The presence of such a higher compression force reduces the resistance in tension of concrete webs in the direction of maximum principal tensile stress. As a result, the web-shear strength of PCHC slabs decreases with increasing prestressing force.
机译:剪切试验在四个预制的预应力混凝土空心核(PCHC)板上进行,深度范围为320mm至500mm,导致两个不同的故障模式,即网剪和弯曲剪切。将从实验程序中获得的标本的剪切强度结果与EN 1168和ACI 318-14预测的那些。比较显示,在某些情况下,这些代码过于测试标本的剪切容量。此外,旨在模拟PCHC板的Web剪切响应的有限元(FE)模型是使用ABAQUS / Spectic(2014)开发的。采用混凝土损伤塑性模型(CDP模型)模拟混凝土非线性行为。数值分析的灵敏度在CDP模型中针对四个塑料参数进行校准。校准表明,PCHC板的纤维剪切行为对四个塑料参数中的三个不敏感。但是,最后一个参数,扩张角度,显着影响预测的故障负载。在实验计划中的2个剪切试验中验证了开发的Fe模型的有效性,并从文献中进行了另外8个剪切测试。然后进行基于验证模型的参数研究。研究了包括混凝土强度,板坯几何形状和预应力水平的设计变量对PCHC板纤维板的影响。参数研究表明,混凝土强度在网剪剪切性能中起着主导作用。然而,角度或更平滑的表面空隙形状的选择不会导致网剪切容量的显着差异。此外,腹板剪切强度随幅材厚度而增加。最重要的是,由于传动长度区域内的股线应力的变化,高水平的预应力增加了混凝土纤维网中的额外剪切应力。此外,它导致混凝土对角线支柱中更高的压缩力。这种更高的压缩力的存在降低了混凝土纤维网沿最大主拉伸应力方向的电阻。结果,PCHC板坯的幅材剪切强度随着预应力的增加而降低。

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