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STRAIN PATH ANALYSIS OF SETUP TIME AROUND PILES AND CAISSONS

机译:桩基和桩基建立时间的应变路径分析

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Installation of driven piles and suction caissons in clayey soils generates excess pore pressures that temporarily reduce load capacity due to side resistance. Time dependent dissipation of these excess pore pressures leads to recovery of side resistance, a process known as 'setup'. Since many facilities cannot be put into operation until sufficient pile load capacity has been mobilized, realistic predictions of setup time can be important. This study consists on the analysis of setup time following open ended pile and caisson installation. Initial excess pore pressures due to installation disturbance are predicted based on a strain path analysis based on a ring source moving at constant velocity in an incompressible medium. It is assumed that the setup occurs primarily due to dissipation of excess pore pressures generated during the installation process; thixotropic effects are neglected. The analysis employs an elastic perfectly plastic model of soil behavior and an uncoupled analysis of consolidation to simulate conditions on the pile shaft outside of the influence of tip effects. A parametric study shows that wall thickness and soil rigidity index can exert order of magnitude differences on setup time. Strain path solutions show reasonable agreement to laboratory and field measurements of pore pressure dissipation around thin-walled piles typical of suction caissons. Strain path solutions tend to underestimate setup time for driven piles, likely due to partial plugging during pile driving.
机译:在黏土中安装打入桩和沉箱会产生多余的孔隙压力,由于侧向阻力,它们会暂时降低负载能力。这些过大的孔隙压力随时间的消散导致侧阻力的恢复,这一过程称为“建立”。由于在动员足够的桩承能力之前,许多设施无法投入运营,因此实际的安装时间预测可能很重要。这项研究包括对开放式桩和沉箱安装后的准备时间进行分析。基于应变路径分析,可以预测由于安装扰动而导致的初始超孔隙压力,该应变路径分析基于在不可压缩介质中以恒定速度运动的环源。假定安装的发生主要是由于安装过程中产生的多余孔隙压力的消散所致。触变效应被忽略。该分析采用了弹性的土壤行为的完美塑性模型,并进行了固结的非耦合分析,以模拟桩尖上不受尖端效应影响的条件。参数研究表明,壁厚和土壤刚度指数可以在建立时间上施加数量级的差异。应变路径解决方案与实验室和现场测量吸水沉箱典型的薄壁桩周围的孔隙压力耗散有合理的一致性。应变路径解决方案可能会低估打入桩的建立时间,这可能是由于打桩过程中部分堵塞造成的。

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