STUDY ON EARTHQUAKE DESTRUCTION MODE OF THE LARGEST CANAL CROSSING HIGHWAY BRIDGE BASED ON IEM BOUNDARY IN SOUTH-TO-NORTH WATER DIVERSION

X. Xu, Honghao Zhang, Jinchang Liang, Xuhui Liu, Chen Xie, Jianwei Zhang
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Abstract

  To study the dynamic failure mechanism and damage development law of highway bridge structure under the boundary effect in the process of seismic dynamic duration, the Wenchang Highway Bridge with the largest canal crossing in the South-to-North Water Diversion is taken as an example for seismic design analysis. Based on the finite element and infinite element coupling theory, the infinite element method boundary is introduced, the concrete damage plasticity is introduced, and the half-space free field model is established to study the energy dispersion phenomenon of waves in the boundary and the absorption effect of the infinite element method boundary on wave energy is verified. Under different peak acceleration intensities, the seismic response analysis of the bridge structure was carried out. The results show that: Under the action of selected artificial waves, the damage location of the bridge mainly concentrated in the junction of the box girder supported by the pier, the bottom of the pier and the junction of the pier and beam. The damage tends to develop downward near the bottom of the box girder. The damage at both ends of the beam extends from both ends to the middle. And the bottom and top of the pier have penetrating damage. These are weak points in seismic design. At a horizontal peak acceleration of 0.6g, in addition to damage to the pier column, damage also occurred to the bottom of the box girder. Therefore, when the horizontal peak acceleration of the seismic wave is greater than 0.6g, the failure of the bottom of the box girder is paid attention to. Moreover, the IEM boundary has a good control effect on the far-field energy dissipation of the wave, which is simpler and more efficient than the viscous–spring boundary.
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南水北调中基于em边界的最大运河跨公路桥地震破坏模式研究
为研究地震动力持续过程中边界效应作用下公路桥结构的动力破坏机制和损伤发展规律,以南水北调最大运河渡口文昌公路桥为例进行了抗震设计分析。基于有限元与无限单元耦合理论,引入无限单元法边界,引入混凝土损伤塑性,建立半空间自由场模型,研究波浪在边界中的能量色散现象,验证无限单元法边界对波浪能量的吸收效应。在不同峰值加速度烈度下,对桥梁结构进行了地震反应分析。结果表明:在选定的人工波作用下,桥梁的损伤位置主要集中在桥墩支撑箱梁的结合部、桥墩底部和桥墩与梁的结合部。箱梁底部附近的损伤有向下发展的趋势。梁两端的损伤由两端向中间延伸。桥墩底部和顶部均存在穿透性损伤。这些都是抗震设计的薄弱环节。水平峰值加速度为0.6g时,除墩柱损伤外,箱梁底部也出现损伤。因此,当地震波水平峰值加速度大于0.6g时,应注意箱梁底部的破坏。此外,IEM边界对波的远场能量耗散有较好的控制效果,比粘簧边界更简单有效。
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