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Multiscale analysis of non-contact splices at drilled shaft to bridge column interface

机译:钻轴到桥柱界面的非接触式接头的多尺度分析

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摘要

The contact and non-contact splices of the longitudinal steel bar and dowel bar have been widely adopted as the interface connection between pier columns and drilled shafts in bridge engineering. With the popularization and application of bridge substructures composed of the rectangular column and circular drilled shaft, the suitability and accuracy of the design provision specified in the current codes, which is derived from the investigation of the uniform circular components, are becoming the research hotspots in engineering and academia. In order to further study the mechanical behavior of the pier column-drilled shafts interface with inconsistent geometrical shapes, the experimental and numerical analysis of the interfaces with the overlap spacing of 0, 4, 6 and 8 in. are carried out systematically. The experimental results indicate that with the increment of lap spacing, the load-bearing capacity of the components will be consistently reduced, and the material strength also plays an important role in the structural performance. Compared with the specimen with the contact splice, the non-contact lap splice between the longitudinal bar and dowel bar will lead to additional shearing cracks and splitting cracks, and the inclination angle of the shearing cracks gradually increases with the enlargement of lap spacing as well. The relationship of the lateral displacement at the top of the column and the vertical reaction agrees well with that of the numerical analysis. Moreover, the fracture distribution and the interface separation can be explicitly depicted by 3D/2D numerical models based on homogeneous concrete assumption, which fully validates the rationality of the experimental observations. In order to exclude the influence caused by the variation of the concrete strength in tested specimens, the material properties in 3D and 2D simulation are uniformly specified according to the measured material strength of Specimen 1 and the numerical findings show that the structural stiffness of Specimens 1-4 decrease with the increment of lap spacing. However, the ultimate bearing capacity of the component is not apparently affected while using non-contact splices, accompanied by satisfied ductility. The detailed failure pattern and the crack evolution between overlapped steel bars are explicitly revealed by the 2D multiscale models. The maximum angle of diagonal cracks can be detected at the end of the overlap area, which is about 45 degrees. The inclination of shearing cracks within the overlap area is slightly smaller and deteriorates with the enlargement of lap spacing. Meanwhile, the microcracks located in the non-overlap area are typically horizontal bending fractures. The research conclusion of this study based on large-scale experimental and numerical investigation is highly referential for the practical application of the interface connection of bridge column to drilled shaft with inconsistent geometry using non-contact splices.
机译:纵向钢筋和销钉的接触和非接触接头已被广泛用作桥梁工程中墩柱和钻探井之间的接口连接。随着矩形柱和圆形钻孔轴组成的桥梁下部结构的推广应用,由对圆形均匀构件的研究得出的当前规范中设计规定的适用性和准确性成为了研究的热点。工程和学术界。为了进一步研究具有不一致几何形状的墩柱钻孔竖井界面的机械性能,系统地对重叠间距为0、4、6和8英寸的界面进行了实验和数值分析。实验结果表明,随着搭接间距的增加,零部件的承载能力将不断降低,材料强度在结构性能中也起着重要作用。与带有接触接头的试样相比,纵向杆和销钉杆之间的非接触搭接接头会导致额外的剪切裂纹和分裂裂纹,并且随着搭接间距的增大,剪切裂纹的倾斜角度也逐渐增大。 。塔顶的横向位移与竖向反应的关系与数值分析吻合得很好。此外,基于均匀混凝土假设,可以通过3D / 2D数值模型明确描述裂缝的分布和界面分离,从而充分验证了实验观察的合理性。为了排除混凝土强度变化对试样的影响,根据试样1的实测材料强度统一指定了3D和2D模拟中的材料性能,数值结果表明试样1的结构刚度-4随着圈距的增加而减小。但是,使用非接触式接头时,组件的极限承载力并未受到明显影响,并具有令人满意的延展性。二维多尺度模型明确揭示了重叠钢筋之间的详细破坏模式和裂纹发展。可以在重叠区域的末端检测到对角裂纹的最大角度,该角度约为45度。重叠区域内的剪切裂纹的倾角略小,并且随着搭接间距的增大而变差。同时,位于非重叠区域的微裂纹通常是水平弯曲裂纹。基于大规模实验和数值研究的研究结论,对于非接触连接的几何形状不一致的桥柱与钻井轴的接口连接的实际应用具有很高的参考意义。

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