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Analysis of combined action of seismic loads and alkali-silica reaction in concrete dams considering the key chemical-physical-mechanical factors and fluid-structure interaction

机译:考虑关键化学-物理-机械因素和流固耦合的混凝土坝地震荷载与碱硅反应的联合作用分析

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This paper presents the results of the numerical analysis of concrete dam structures which are affected by Alkali Silica Reaction (ASR) and subjected to seismic load. In this research a Chemo-Thermo-Mechanical ASR Finite Element numerical code is developed to model and analyse this phenomenon in concrete dams. It considers the effects of variables such as temperature, non-uniform time-dependent material degradation and 3D stress confinement on ASR evolution. The model is validated by modelling the mechanical response of the Fontana gravity dam and comparing the results with the actual data on macro crack appearance and crest displacement. While the structural behaviour of ASR affected structures under monotonic and quasi-static loading has been extensively investigated over the last decades, limited research has addressed the effect of dynamic loads on structures affected by ASR. The combined effect of old and new cracks under dynamic excitation may cause dam failure. The numerical simulations are used to assess and predict the dynamic stability of the Koyna dam considering fluid-structure interaction and are also used to investigate the evolution of damage associated with inception and development of macro cracks in the dam structure due to the combined effect of the synthetic ASR and realistic seismic loading on the dam. The results show that this combined action can significantly change the dynamic behaviour of typical concrete dams due to concrete material degradation and crack development.
机译:本文介绍了受碱二氧化硅反应(ASR)影响并承受地震荷载的混凝土坝结构的数值分析结果。在这项研究中,开发了化学-热机械ASR有限元数字代码,以对混凝土大坝中的这种现象进行建模和分析。它考虑了温度,不均匀的随时间变化的材料降解和3D应力限制等变量对ASR演化的影响。通过对Fontana重力坝的机械响应进行建模,并将结果与​​宏观裂纹外观和波峰位移的实际数据进行比较,验证了该模型的有效性。在过去的几十年中,虽然对在单调和准静态载荷下受ASR影响的结构的结构行为进行了广泛研究,但有限的研究已经解决了动态载荷对受ASR影响的结构的影响。在动力激励下新旧裂缝的综合作用可能会导致大坝破坏。数值模拟被用于评估和预测考虑流体-结构相互作用的科伊纳大坝的动力稳定性,还被用于调查由于大坝的综合作用而与大裂缝开始和发展有关的损伤演化。合成的ASR和大坝上真实的地震荷载。结果表明,由于混凝土材料的降解和裂纹的发展,这种联合作用可以显着改变典型混凝土大坝的动力特性。

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