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Seismic cracking of concrete gravity dams by plastic-damage model using different damping mechanisms

机译:利用不同阻尼机制的塑性损伤模型对混凝土重力坝的地震破坏

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摘要

Utilizing two different damping mechanisms, seismic cracking response of concrete gravity dams is examined by a plastic-damage model implemented in three-dimensional space. The material constitutive law employed herein is based on the one proposed by Lee and Fenves for the 2-D plane stress case. This plastic-damage model basically intended for cyclic or dynamic loading was founded on the combination of non-associated multi-hardening plasticity and isotropic damage theory to simulate the irreversible damages occurring in fracturing process of concrete. In this study, considering the HHT scheme as an implicit operator, the time integration procedure to iteratively solve the governing nonlinear equations is presented. Further, seismic fracture responses of gravity dams due to constant and damage-dependent damping mechanisms are compared. In order to assess the validity of the proposed model, several simple examples are solved and their results are presented first. Subsequently, Koyna gravity dam, which is a benchmark problem for the seismic fracture researches, is analyzed. It is concluded that employing the damage-dependent damping mechanism leads to more extensive damages and also predicts more reliable crack patterns in comparison with the constant damping mechanism in seismic analysis of concrete dams. Furthermore, including dam-water interaction intensifies the existing differences between the results of the two damping mechanisms.
机译:利用两种不同的阻尼机制,通过在三维空间中实现的塑性损伤模型研究了混凝土重力坝的地震开裂响应。本文采用的材料本构律是基于Lee和Fenves提出的二维平面应力情况。该塑性损伤模型主要用于循环或动态载荷,是基于非关联多硬化塑性和各向同性损伤理论的组合,模拟了混凝土压裂过程中发生的不可逆损伤。在这项研究中,考虑到HHT方案作为隐式算子,提出了迭代求解控制非线性方程的时间积分程序。此外,比较了由于恒定和取决于损伤的阻尼机制引起的重力坝地震裂缝响应。为了评估所提出模型的有效性,解决了几个简单的例子,并首先介绍了它们的结果。随后,分析了作为地震裂缝研究基准问题的科伊纳重力坝。结论是,与混凝土坝地震分析中的恒定阻尼机制相比,采用基于损伤的阻尼机制导致更大范围的破坏,并且还预测了更可靠的裂缝模式。此外,包括大坝与水的相互作用,加剧了两种阻尼机制的结果之间存在的差异。

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