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Nonlinear earthquake response of concrete gravity dam systems

机译:混凝土重力坝系统的非线性地震反应

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摘要

The earthquake response of concrete gravity dam systems is investigated with emphasis on the nonlinear behavior associated with tensile concrete cracking and water cavitation. A single dam-monolith is considered and is assumed to respond independently as a two-dimensional system under plane stress conditions. The two-dimensional assumption is also extended to model the compressible water body impounded upstream of the dam. Standard displacement-based finite element techniques are used to spatially discretize the field equations and produce a single symmetric matrix equation for the dam-water system. Energy dissipation in the reservoir, through radiation in the infinite upstream direction and absorption at the bottom, is approximately accounted for, and a set of numerical examples is presented to demonstrate the accuracy of the present formulation in modeling the linear earthquake response of infinite reservoirs. An approximate procedure to account for dam-foundation interaction is incorporated based on the response of a rigid plate attached to a three-dimensional viscoelastic halfspace.Water cavitation is modeled by a smeared approach which uses a bilinear pressure-strain relation. It is shown that the water response becomes dominated by spurious high frequency oscillations upon closure of cavitated regions, and improved results can be obtained by using some stiffness-proportional damping in the water reservoir. As demonstrated in an example analysis of Pine Flat Dam (linear dam), cavitation occurs in the upper part of the reservoir along the dam face, unlike other investigations which show cavitated regions at considerable distances from the dam, and both the tensile pressure cutoffs and compressive impacts have a minor effect on the dam response.Tensile cracks are incorporated using the smeared crack approach, and sliding along closed cracks is allowed. Coupling effects inherent in the finite element formulation are explained, and their influence on open and closed cracks is investigated. Propagation of cracks is monitored in an interactive environment which uses an equivalent strength criterion and allows for user input; remeshing is avoided. The algorithm adopted here produces narrow cracks, unlike many other investigations which show large zones of cracking. An extensive numerical study of Pine Flat Dam demonstrates some interesting features of the nonlinear response of the system, identifies potential failure mechanisms, and reveals a number of difficulties that the analysis encounters. Although no instability of the dam occurs, the numerical difficulties will have to be overcome before definite conclusions regarding stability can be made. It is shown that cracking reduces the hydrodynamic pressures in the reservoir and, hence, reduces water cavitation.
机译:研究混凝土重力坝系统的地震反应,重点是与拉伸混凝土开裂和水蚀有关的非线性行为。考虑单个水坝整体,并假定其在平面应力条件下作为二维系统独立响应。二维假设也得到扩展,以模拟蓄积在大坝上游的可压缩水体。基于标准位移的有限元技术用于在空间上离散场方程,并为坝-水系统生成单个对称矩阵方程。通过沿无限上游方向的辐射和在底部的吸收来近似地解释了储层中的能量耗散,并给出了一组数值示例,以证明本公式在模拟无限储层的线性地震响应中的准确性。基于附着在三维粘弹性半空间上的刚性板的响应,结合了一个近似的程序来解决坝基相互作用。通过使用双线性压力-应变关系的涂抹方法对水空化进行建模。结果表明,在空化区域关闭时,水响应受杂散高频振荡的支配,并且通过在储水罐中使用一些与刚度成比例的阻尼可以获得更好的结果。如Pine Flat Dam(线性坝)的示例分析所示,气穴现象发生在沿坝面的水库上部,与其他研究不同,该研究显示与水坝相距相当远的空化区域,以及拉伸压力截止值和压缩冲击对大坝的响应影响不大。采用涂抹裂纹法可将拉伸裂缝纳入其中,并允许沿闭合裂缝滑动。解释了有限元公式固有的耦合效应,并研究了它们对开裂和闭合裂纹的影响。裂纹的传播在交互式环境中进行监控,该环境使用等效的强度标准并允许用户输入。避免重新排列。与许多其他研究显示较大的裂纹区域不同,此处采用的算法产生的裂纹较窄。 Pine Flat Dam的广泛数值研究证明了系统非线性响应的一些有趣特征,确定了潜在的失效机理,并揭示了分析遇到的许多困难。尽管没有大坝的失稳,但在就稳性做出明确结论之前,必须克服数值上的困难。结果表明,开裂会降低储层中的水动力压力,从而减少水蚀现象。

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    El-Aidi Bahaa;

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  • 年度 1988
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