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PILE DESIGN FOR LIQUEFACTION EFFECTS

机译:液化效果的桩设计

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Although liquefaction is a rare event in Australia, with only two documented instances, a pile design must still cater for liquefaction in a design earthquake. Liquefaction can lead to a loss of shaft resistance, additional horizontal displacements and bending moment under inertia loads, pile buckling and lateral spreading. This paper describes the four loading stages suffered by a pile before, during and after an earthquake when liquefaction may or may not occur. The method of Youd et al (2001) is used to predict the potential for liquefaction with depth. The important parameters for use in a 'design earthquake', namely peak ground acceleration and earthquake magnitude, depend on the seismic activity of the region and have been derived for the area of Adelaide, South Australia. If the soil profile has the potential to liquefy, the geotechnical capacity, the lateral behaviour and the buckling potential of the pile under the inertia loads must be determined for the loss of soil support. If lateral spreading can occur, a further lateral analysis is required. This method is used by the author in routine pile design and an example of the design process together with four case histories is given. The importance of continuous sampling and very careful logging of the soil profile during the geotechnical investigation is emphasised for an accurate liquefaction assessment.
机译:尽管液化在澳大利亚很少发生,但仅记录了两个实例,但桩设计仍必须能够应付设计地震中的液化。液化会导致轴阻力损失,惯性载荷下附加的水平位移和弯矩,桩屈曲和横向扩展。本文描述了在地震发生之前,之中和之后可能发生液化或未发生液化的四个阶段。 Youd等人(2001年)的方法用于预测液化深度的可能性。在“设计地震”中使用的重要参数,即峰值地面加速度和地震震级,取决于该地区的地震活动,并且是针对南澳大利亚州阿德莱德地区得出的。如果土壤剖面具有液化的潜力,则必须确定惯性载荷下桩的岩土工程能力,横向性能和屈曲潜力,以减少土壤支撑。如果可能发生横向扩展,则需要进一步的横向分析。作者将此方法用于常规桩设计中,并给出了设计过程的示例以及四个案例历史。为了进行准确的液化评估,强调了在岩土工程研究期间连续取样和非常仔细地记录土壤剖面的重要性。

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