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Modeling of Hydraulic Fracture of Concrete Gravity Dams by Stress-Seepage-Damage Coupling Model

机译:用应力-渗流-损伤耦合模型对混凝土重力坝水力压裂建模

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摘要

High-pressure hydraulic fracture (HF) is an important part of the safety assessment of high concrete dams. A stress-seepage-damage coupling model based on the finite element method is presented and first applied in HF in concrete dams. The coupling model has the following characteristics: (1) the strain softening behavior of fracture process zone in concrete is considered; (2) the mesh-dependent hardening technique is adopted so that the fracture energy dissipation is not affected by the finite element mesh size; (3) four coupling processes during hydraulic fracture are considered. By the damage model, the crack propagation processes of a 1 : 40 scaled model dam and Koyna dam are simulated. The results are in agreement with experimental and other numerical results, indicating that the damage model can effectively predict the carrying capacity and the crack trajectory of concrete gravity dams. Subsequently, the crack propagation processes of Koyna dam using three notches of different initial lengths are simulated by the damage model and the coupling model. And the influence of HF on the crack propagation path and carrying capacity is studied. The results reveal that HF has a significant influence on the global response of the dam.
机译:高压水力压裂(HF)是高混凝土大坝安全评估的重要组成部分。提出了一种基于有限元方法的应力-渗流-损伤耦合模型,并将其首先应用于混凝土大坝的高频分析中。耦合模型具有以下特点:(1)考虑了混凝土断裂过程带的应变软化行为; (2)采用网格依赖的硬化技术,使断裂能量的耗散不受有限元网格尺寸的影响; (3)考虑了水力压裂过程中的四个耦合过程。通过损伤模型,模拟了1:40比例模型大坝和科伊纳大坝的裂纹扩展过程。计算结果与实验和其他数值结果吻合,表明损伤模型可以有效地预测混凝土重力坝的承载能力和裂缝轨迹。随后,通过损伤模型和耦合模型模拟了使用不同初始长度的三个缺口的科伊纳大坝的裂纹扩展过程。并研究了HF对裂纹扩展路径和承载能力的影响。结果表明,HF对大坝的整体响应有重大影响。

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  • 来源
    《Mathematical Problems in Engineering》 |2017年第2017期|8523213.1-8523213.15|共15页
  • 作者

    Sha Sha; Zhang Guoxin;

  • 作者单位

    Tsinghua Univ, Dept Hydraul Engn, Beijing 100084, Peoples R China|China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China;

    China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China;

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