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Prediction of Three-Dimensional Dynamic Soil-Pile Group Interaction in Layered Soil by Boundary Element Analysis and Seismic Cone Penetration Tests

机译:边界元分析及地震锥形渗透试验预测分层土的三维动态土桩群相互作用

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A series of full-scale dynamic vibration tests and cyclic lateral tests are to be performed on a single pipe pile and a 2×2 pile group as part of an ongoing research project. The parallelized boundary element method (BEM) code BEASSI was modified and used to predict the three-dimensional vibration response of the pile group with account of the layered soil profile including material damping and radiation damping in the viscoelastic system. The concept of the disturbed-zone model for pile groups is employed to account for pile installation effects, soil inhomogeneity, and stress- and strain-dependent modulus and damping in the near-field, while simultaneously capturing three-dimensional wave propagation and rigorously accounting for radiation damping in the far-field. To acquire accurate soil profiles as input to the analyses, a comprehensive site investigation was recently conducted, including seismic cone penetration testing with pore pressure measurement (SCPTu), standard penetration testing (SPT), and Shelby tube sampling. In the present paper, the acceleration sensor responses from SCPT tests at various depths are analyzed by the cross-correlation method to obtain shear wave velocity profiles, and the results are compared to those by the arrival time and cross-over methods, as well as empirical correlations to CPT tip resistance and sleeve friction. Material damping in the soil is also estimated from the SCPT data by the spectral ratio slope (SRS) method, which aims to minimize effects of radiation damping. The BEM program is then used with the resulting shear wave velocity profiles to calculate impedance functions in the frequency domain, which explicitly quantify the three-dimensional interaction between all the piles in the group. A general formulation based on the sub-structuring method is employed to analyze the dynamic response of pile groups using the impedance functions to obtain accelerance functions of the pile cap in vertical and coupled lateral-rocking vibration modes for validation. The findings demonstrate the accuracy and stability of the cross-correlation method for estimating shear-wave velocity from SCPT data, and an average minimum material damping ratio of 2.6% by the SRS method for the clay soils encountered. The impedance functions of the pile group indicate strong frequency-dependent dynamic soil-pile-soil interaction for the case examined. Results of this study will aid development of the proposed disturbed-zone continuum models, and provide insights into future physical pile group tests.
机译:作为正在进行的研究项目的一部分,将在单管桩和2×2桩组上进行一系列全尺寸动态振动试验和循环横向试验。被修改并用于预测桩基的三维振动响应,以说明粘弹性系统中的材料阻尼和辐射阻尼的层状土壤分布,以预测桩基的三维振动响应。采用桩基干扰区模型的概念来占桩安装效果,土壤不均匀性和应力和应变依赖性模量和阻尼,同时捕获三维波传播和严格核对用于远场中的辐射阻尼。为了获得准确的土壤概况作为对分析的输入,最近进行了综合现场调查,包括具有孔隙压力测量(SCPTU),标准穿透检测(SPT)和Shelby管采样的地震锥形渗透测试。在本文中,通过互相关方法分析来自各种深度的SCPT测试的加速度传感器响应,得到剪切波速度分布,并将结果与​​到达时间和交叉方法相比,以及CPT尖端电阻和套筒摩擦的经验相关性。通过光谱比斜率(SRS)方法,还从SCPT数据估算了土壤中的材料阻尼,这旨在最大限度地减少辐射阻尼的影响。然后将BEM程序与产生的剪切波速度配置文件一起使用以计算频域中的阻抗函数,这明确地量化了组中所有桩之间的三维交互。采用基于副结构方法的一般配方用于利用阻抗函数来分析绒绒基团的动态响应,以获得垂直和耦合横向摇摆振动模式的桩帽的加速函数。该研究结果证明了互相关方法的准确性和稳定性,用于估计来自SCPT数据的剪切波速度,并且通过SRS方法遇到的粘土土壤的平均最小材料阻尼比为2.6%。桩基的阻抗功能表明案例检查的频率依赖性动态土桩土相互作用。该研究的结果将有助于开发建议的扰动区连续体型,并为未来的物理桩基测试提供见解。

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