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A 1-g shaking table investigation on response of a micropile system to earthquake excitation

机译:一种1克振动表调查,微薄系统对地震激励的响应研究

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Considering the increasing applications of micropile systems in seismically active areas, a better understanding of their seismic performance and the key controlling factors is of high significance. This paper presents experimental investigations of the seismic performance of a small-scale physical model of micropiles under seismic ground motions. Shaking table tests were performed on a 4 x 4 group of vertical micropiles embedded in loose sand. Horizontal acceleration time histories recorded from the 1940 El Centro earthquake and 1995 Kobe earthquake were applied to the base of the soil container. The response of the physical model was monitored in terms of horizontal accelerations at different levels and bending moments induced in the micropiles. The experimental results indicate that in all shaking events, the magnitudes of horizontal accelerations on the soil surface and the pile cap were amplified with respect to the input motion. Bending moments were induced in the micropiles and peaked at the mid-depth. It was also found that inclining the micropiles led to improvement in their seismic performance, reducing both the acceleration response on soil surface and pile cap, and the induced bending moments in the micropiles. Finite element simulations of shaking table tests have been performed, and the results are in reasonable agreement with observations from the experiments.
机译:考虑到微米系统在地震活动区域的增加,更好地了解他们的地震性能和关键控制因素具有高意义。本文介绍了地震地面运动下微型微型微型物理模型的地震性能的实验研究。在嵌入松散沙子的4×4组垂直微型垂直微型垂直微型垂直微量垫上进行振动台试验。从1940年EL Centro地震和1995年神户地震记录的水平加速时间历史被应用于土壤容器的底部。根据在微量水平加速度和微量植物中诱导的弯曲力矩来监测物理模型的响应。实验结果表明,在所有摇动事件中,相对于输入运动扩增了土壤表面和桩帽上的水平加速度的大小。在微量植物中诱导弯曲力矩并在中间深度达到峰值。还发现,倾斜微量厚度导致其抗震性能的改善,降低了土壤表面和桩帽的加速度响应,以及微量植物中的诱导弯矩。已经进行了有限元模拟振动台测试,结果与实验的观察结果合理。

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