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首页> 外文期刊>International journal of geomechanics >Analytical and Computational Modeling of Integral Abutment Bridges Foundation Movement due to Seasonal Temperature Variations
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Analytical and Computational Modeling of Integral Abutment Bridges Foundation Movement due to Seasonal Temperature Variations

机译:由于季节温度变化而引起的整体桥台桥梁基础运动的分析和计算模型

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Classical mechanics theory is used to develop an analytical model for determining pile displacement due to temperature variations, in integral abutment bridges (IABs). The advantage of this model, as opposed to simple techniques proposed by AASHTO, is that it includes the forces that develop in the bridge due to soil pressure constraining the piles. A three-dimensional, nonlinear finite-element model (FEM) of the superstructure and substructure is developed to determine the displacement and cyclic behavior of piles. FEM is used to analyze the cyclic stress-strain behavior of piles and determine their inelastic deformation. Both the analytical model and FEM are used to calculate the displacements in piles for variety of bridge lengths under thermos-mechanical loading due to daily and seasonal temperature variations. Displacement calculations using the analytical model are then compared with the finite element and AASHTO results. The results show that although the new analytical model takes into account soil pressure on the piles, it does not include the soil pressure on the abutment. Therefore, the amount of deformation that FEM shows for expansion of the bridge is less than that determined by the analytical model. However, results of the analytical model are less than the AASHTO results. This shows that in conservative designs AASHTO can be used comfortably. If more accurate, less conservative design is desirable, the analytical model and FEM are proposed. FEM results show that maximum lateral displacement in (contraction) occurs during the winter. The displacement of piles in the summer and during high temperature times of the day shows a nonmonotonic trend with respect to depth providing buckling behavior in the piles. The piles' displacement is completely monotonic during the winter and cold times of the night. For the bridge studied maximum stress occurs in the pile that is furthest from the center of the bridge. The cyclic stress-strain loop and inelastic deformation, both found from the FEM, are studied closely to identify the most likely location of a fatigue crack. Since plastic deformation occurs in piles, low cycle fatigue is expected. The most likely crack location is found in the flange of the pile right below the concrete abutment.
机译:古典力学理论用于开发分析模型,用于确定整体式桥台(IAB)中温度变化引起的桩位移。与AASHTO提出的简单技术相反,该模型的优势在于它包含了由于土压力限制桩而在桥中产生的力。建立了上部结构和下部结构的三维非线性有限元模型(FEM),以确定桩的位移和循环特性。有限元分析法用于分析桩的循环应力-应变特性,并确定桩的非弹性变形。解析模型和FEM均用于计算由于每日和季节性温度变化而引起的各种桥长在热力-机械载荷下的桩位移。然后将使用解析模型进行的位移计算与有限元和AASHTO结果进行比较。结果表明,尽管新的分析模型考虑了桩上的土压力,但它不包括基台上的土压力。因此,FEM显示的桥梁扩展变形量小于解析模型确定的变形量。但是,分析模型的结果小于AASHTO的结果。这表明,在保守设计中,可以轻松使用AASHTO。如果需要更准确,更不保守的设计,则提出分析模型和有限元分析。有限元结果表明,最大横向位移(收缩)发生在冬季。在夏季和一天中的高温时期,桩的位移相对于深度显示出非单调趋势,从而在桩中提供了屈曲行为。在冬天和夜晚寒冷的时候,桩的位移是完全单调的。对于所研究的桥梁,最大应力发生在距离桥梁中心最远的桩中。从有限元分析中发现的循环应力-应变循环和非弹性变形都经过了仔细研究,以找出疲劳裂纹最可能的位置。由于在桩中发生塑性变形,因此预期低周疲劳。最可能的裂缝位置在混凝土基台正下方的桩的凸缘中。

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