Numerical Assessment of Pipe Pile Response under Seismic Excitation

Duaa Al-Jeznawi, I. M. Mohamed Jais, Bushra S. Albusoda, Norazlan Khalid
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引用次数: 1

Abstract

The axial capacity and pile transference of loads under static loading have both been well reported, but further research is needed to understand the dynamic lateral responses. The pile load imposed during an earthquake may increase, but the soil’s ability to support it may fall as a side effect of the vibration leading to more settlement. The key objective of this work is to identify what led to the substantial lateral destruction of the piles during the seismic event due to the kinematic effects. These failures were related to discontinuities in the subsoil as a result of sudden changes in soil strength due to shaking. The kinematic stresses exerted in a single pipe pile constructed in two sand layers under two different situations (dry and saturated states) are investigated in this study using numerical modeling. The bending moments were higher in the saturated sand soil than in the dry one which may be attributed to liquefaction. Generally, the acceleration increased through the loose layer (from bottom to top), and then significantly settled within the dense layer. It could be shown that using this modeling, one can estimate how a pile foundation will behave under "kinematic" loading driven by earthquakes. Therefore, the design and installation of drilled aluminum or steel piles in sand soil could make use of these present observations.
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地震作用下管桩响应的数值评估
静力荷载作用下的轴向承载力和桩的传递力都有较好的报道,但需要进一步的研究来了解动态横向响应。在地震期间,桩的荷载可能会增加,但作为振动的副作用,土壤的支撑能力可能会下降,导致更多的沉降。这项工作的关键目标是确定在地震事件中由于运动学效应导致桩的大量侧向破坏的原因。这些破坏与由于震动引起的土壤强度突然变化而导致的底土不连续有关。本文采用数值模拟的方法,研究了在两种不同情况下(干态和饱和态),单管桩在两层砂土中的运动应力。饱和砂土的弯矩比干燥砂土的弯矩要大,这可能与液化有关。一般来说,加速度在松散层中(自下而上)增加,然后在致密层中显著沉降。可以看出,利用该模型,可以估计在地震驱动的“运动”荷载下桩基的行为。因此,砂土中钻孔铝桩或钢桩的设计和安装可以利用这些观察结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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