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A cracked concrete material model for the nonlinear finite element analysis of slab-on-girder bridges.

机译:用于混凝土板桥非线性有限元分析的开裂混凝土材料模型。

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摘要

This research investigates three-dimensional finite element modeling techniques for slab-on-girder bridges, and develops a concrete crack model which is implemented within a nonlinear finite element framework. The concrete crack model is used to investigate the effect of pre-existing cracks on the live load distribution on steel girder bridges.; First, the behavior of composite steel girder bridges is examined by means of three-dimensional finite element analyses. Several finite element models have been implemented and tested to determine their accuracy and limitations. The selected model is such that the deck is represented by shear flexible shell elements and the structural steel girder is idealized by Timoshenko beam elements. Full composite action between slab and girder is guaranteed by multi-point-constraints.; A concrete crack model based on the strain decomposition technique has been adopted. This technique enables the explicit inclusion of physical behavior across the cracked concrete surface such as aggregate interlock and dowel action rather than intuitively defining the shear retention factor. The concrete material model has been extended to three-dimensional problems using a layered approach. The proposed material model has been integrated into the commercial finite element (FE) software ABAQUS shell elements through a user-supplied material subroutine. The FE results have been compared to experimental results reported by other researchers. It has been found that the developed bridge FE model is capable of accurately predicting the initial cracking load level, the ultimate load capacity, and the crack pattern.; Finally, the proposed concrete crack model has been extended to investigate the effect of pre-existing cracks in reinforced concrete bridge decks on the live load distribution of steel girder bridges. Three Indiana steel girder bridges, which have pre existing cracks, have been identified and analyzed using the developed nonlinear finite element framework. Numerical results indicate that transverse cracking of the concrete deck at the negative moment zone does not significantly influence the transverse distribution of the design moment. Thus, the load distribution factor equation in the AASHTO-LRFD code can be used safely in transversely cracked bridge decks. Longitudinal cracking, on the other hand, has been found to have a significant influence on the lateral load distribution. Thus, an increased load distribution factor is expected in this case, which can affect the rating of bridge experiencing longitudinal cracking.
机译:本研究研究了板桥上的三维有限元建模技术,并开发了在非线性有限元框架内实现的混凝土裂缝模型。使用混凝土裂缝模型研究预先存在的裂缝对钢梁桥活荷载分布的影响。首先,通过三维有限元分析来检查复合钢梁桥的性能。已经实施并测试了几种有限元模型,以确定其准确性和局限性。选择的模型是这样的,使得甲板由抗剪挠性壳单元代表,而结构钢大梁由Timoshenko梁单元理想化。多点约束保证了板与梁之间的完全复合作用。采用了基于应变分解技术的混凝土裂缝模型。这项技术可以明确地包括开裂混凝土表面上的物理行为,例如骨料联锁和销钉作用,而不是直观地定义剪切保持因子。使用分层方法将混凝土材料模型扩展到三维问题。拟议的材料模型已通过用户提供的材料子例程集成到了商业有限元(FE)软件ABAQUS壳单元中。有限元结果已与其他研究人员报告的实验结果进行了比较。已经发现,所开发的桥梁有限元模型能够准确地预测初始开裂荷载水平,极限荷载能力和裂缝模式。最后,扩展了所提出的混凝土裂缝模型,以研究钢筋混凝土桥面板中预先存在的裂缝对钢梁桥活荷载分布的影响。使用已开发的非线性有限元框架,已经确定并分析了三座印第安纳州钢梁桥,这些桥已经存在裂缝。数值结果表明,混凝土桥面在负弯矩区域的横向开裂不会显着影响设计弯矩的横向分布。因此,AASHTO-LRFD代码中的载荷分布系数方程式可以在横向开裂的桥面板中安全使用。另一方面,已经发现纵向裂纹对侧向载荷分布有重大影响。因此,在这种情况下,预期的荷载分配系数会增加,这会影响桥梁出现纵向裂缝的等级。

著录项

  • 作者

    Chung, Won Seok.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 214 p.
  • 总页数 214
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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