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Numerical Study of an Integral Abutment Bridge Supported on Drilled Shafts

机译:钻孔轴支撑整体式桥台的数值研究

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摘要

The majority of integral abutment bridges (IABs) in the United States are supported on steel H-piles to provide the flexibility necessary to minimize the attraction of large lateral loads to the foundation and abutment. In Hawaii, steel H-piles have to be imported, corrosion tends to be severe in the middle of the Pacific Ocean, and the low buckling capacity of steel H-piles in scour-susceptible soils has led to a preference for the use of concrete deep foundations. A drilled shaft-supported IAB was instrumented to study its behavior during and after construction over a 45-month period. This same IAB was studied using the finite-element method (FEM) in both two-(2D) and three dimensional (3D). The 3D FEM yields larger overall pile curvature and moments than 2D because in 3D, the high plasticity soil is able to displace in between the drilled shafts thereby "dragging" the shafts to a more highly curved profile while soil flow is restricted by plane strain beam elements in 2D. Measured drilled shaft axial loads were higher than the FEM values mainly due to differences between the assumed and actual axial stiffness and to a lesser extent on concrete creep in the drilled shafts and uneven distribution of loads among drilled shafts. Numerical simulations of thermal and stream loadings were also performed on this IAB.
机译:在美国,大多数整体式桥台(IAB)都由钢制H形桩支撑,以提供必要的灵活性,以最大程度地减小大的横向载荷对基础和桥台的吸引力。在夏威夷,必须进口钢制H形桩,在太平洋中部腐蚀趋于严重,钢制H形桩在易冲刷的土壤中的屈曲能力低,导致人们倾向于使用混凝土。深厚的基础。钻了一个竖井支撑的IAB,以研究其在施工期间和施工后45个月内的行为。使用有限元方法(FEM)在二维(2D)和三维(3D)中研究了相同的IAB。 3D FEM产生的整体桩曲率和弯矩比2D大,因为在3D中,高可塑性土壤能够在钻孔的竖井之间移动,从而将竖井“拖曳”到更高的弯曲轮廓,而土壤流动受到平面应变梁的限制2D中的元素。测得的钻轴轴向载荷高于FEM值,这主要是由于假定的轴向刚度和实际轴向刚度之间的差异,以及钻轴中混凝土蠕变的较小程度以及钻轴之间载荷的不均匀分布所致。在此IAB上还进行了热负荷和流负荷的数值模拟。

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