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A dynamic analysis procedure for concrete-faced rockfill dams subjected to strong seismic excitation

机译:地震作用下面板混凝土堆石坝动力分析程序

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摘要

There is presently littel analytical and essentially no observational evidence on the behavior of the concrete-face of the very popular concrete-faced rockfill (CFR) dams during string seismic shaking. The choice of slab thickness and steel reinforcement is based solely on precedent, with performance under static loads being the only design consideration. To fill this gap, a dynamic finite element (FE) procedure is presented to design the concrete-face slab which involves a realistic modeling for the embankment material, the face slab, and the slab-rockfill interface. A set of historic accelerograms, with peak ground accelerations (pga) of about 0.60 g, is used as excitation. Numerical results highlihgt key aspects of the seismic response of CFR dams with emphasis on the internal forces developing in the slab. It is shown that slab distress may be produced only from axial tensile forces, developing mainly due to the rocking component of dam deformation. For the 0.60 g shaking tensile stresses much higher than the likely tensile strength of concrete development in the slab. All analyses in this FE study are performed with the ADINA special interface elements to model the slip and Newmark's time-integration algorithm for a direct step-by-step solution.
机译:目前,对于弦地震震过程中非常流行的混凝土面板堆石坝(CFR)大坝混凝土面板的行为,目前尚无相关分析,也几乎没有观察到证据。板坯厚度和钢筋的选择仅基于先例,在静态载荷下的性能是唯一的设计考虑因素。为了填补这一空白,提出了一种动态有限元(FE)程序来设计混凝土面板,其中包括对路堤材料,面板和堆石界面的真实建模。一组具有历史意义的加速度图(峰值地面加速度(pga)约为0.60 g)被用作激励。数值结果显示了CFR大坝地震响应的关键方面,并着重于板坯内力的发展。结果表明,平板遇险可能仅由轴向拉力产生,而轴向拉力主要是由于大坝变形的摇摆分量而产生的。对于0.60 g的振动,拉伸应力远远高于板坯中混凝土开发的可能拉伸强度。这项有限元研究中的所有分析都是使用ADINA特殊接口元素进行的,以对传票和Newmark的时间积分算法进行建模,以获得直接的逐步解决方案。

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